References

Preface

  1. Alvarez-Pereyre, F. (2003). L’exigence interdisciplinaire. MSH, Paris.
  2. André, J.-C. (2018a). From Additive Manufacturing to 3D/4D Printing 1: From Concepts to Achievements. ISTE Ltd, London and John Wiley & Sons, New York.
  3. André, J.-C. (2018b). From Additive Manufacturing to 3D/4D Printing 2: Current Techniques, Improvements and their Limitations. ISTE Ltd, London and John Wiley & Sons, New York.
  4. André, J.-C. (2018c). From Additive Manufacturing to 3D/4D Printing 3: Breakthrough Innovations: Programmable Material, 4D Printing and Bio-printing. ISTE Ltd, London and John Wiley & Sons, New York.
  5. André, J.-C. (2019). Industry 4.0: Paradoxes and Conflicts. ISTE Ltd, London and John Wiley & Sons, New York.
  6. Araujo-Jorge, M.M. (2001). L’impact épistémologique des individus. Nathan, Paris.
  7. Bachelard, G. (2007). La formation de l’esprit scientifique – contribution à une psychanalyse de la connaissance. Vrin, Paris.
  8. Baranko, K. (2019). Cultivating an emergent order in the energy system [Online]. Available at: https://cleantechnica.com/2019/02/28/cultivating-an-emergent-order-in-the-energy-system.
  9. Baransky, L. (2014). Le manager éclairé : donner du sens et réussir le changement. Eyrolles, Paris.
  10. Barreau, H. (2007). La cosmologie comme laboratoire de la complexité. In Intelligence de la complexité, Le Moigne, J.-L. (ed.). Éditions de l’Aube, La Tour d’Aigues, 185–205.
  11. Bauman, Z. (2009). L’éthique a-t-elle une chance dans un monde de consommateurs ? Climats, Paris.
  12. Beigbeder, C. (2012). Puisque c’est impossible, faisons-le. J.C. Lattès, Paris.
  13. Bernanos, G. (2015). La France contre les robots. Le Castor Astral, Paris.
  14. Bernstein, J. (1991). Quantum Profiles. Princeton University Press, Princeton.
  15. Berthet, V. (2018). L’erreur est humaine : aux frontières de la rationalité. CNRS, Paris.
  16. Boudon, R. (1984). La place du désordre. PUF, Paris.
  17. Boudon, R. (2006). L’inégalité des chances. Pluriel, Paris.
  18. Brun, J. (1992). La machine et le rêve. La Table ronde, Paris.
  19. Callon, M. (1998). An essay on framing and overflowing: Economic externalities revisited by sociology. In The Laws of the Markets, Callon, M. (ed.). Blackwell, Oxford.
  20. Challenges (2019). Israël – le modèle mondial de la Tech. Challenges, 600, 56–65.
  21. Chazel, F. (1974). La théorie analytique de la société dans l’œuvre de Talcott Parsons. Mouton, Paris.
  22. Comte, A. (1998). Cours de philosophie positive. Hermann, Paris.
  23. D’Espagnat, B. (2015). À la recherche du réel – le regard d’un physicien. Dunod, Paris.
  24. D’Olivera Martins, G. (2007). Quelle complexité aujourd’hui ? In Intelligence de la complexité, Le Moigne, J.-L. (ed.). Éditions de l’Aube, La Tour d’Aigues, 433–437 .
  25. De Musset, A. (2003). Fantasio. Gallimard, Paris.
  26. Descartes, R. (2018). Comment vivre quand on ne croit en rien. Flammarion, Paris.
  27. Diderot, D. (2000). Jacques the Fatalist and His Master. Translated by Henry, M. Penguin, London.
  28. Drucker, P. (2006). Innovation and Entrepreneurship. Collins, New York.
  29. Ellul, J. (2004). Le système technicien. Le Cherche midi, Paris.
  30. Ellul, J. (2017). Bernard Charbonneau & Jacques Ellul – deux libertaires gascons unis par une pensée commune [Online]. Available at: https://lesamisdebartleby.files.wordpress.com/2017/01/bcje-toile.pdf.
  31. EP – European Parliament (2019). Disinformation and propaganda – Impact on the functioning of the rule of law in the EU and its Member States [Online]. Available at: http://www.europarl.europa.eu/RegData/etudes/STUD/2019/608864/IPOL_STU(2019)608864_EN.pdf.
  32. Festinger, L. (1957). A Theory of Cognitive Dissonance. University of Stanford, Stanford.
  33. Fiorino, D.F., Coury, A. and Phillips, A.G. (1997). Dynamic changes in nucleus accumbens dopamine efflux during the Coolidge effect in male rats. Neurosciences, 17, 4849–4855.
  34. Frau-Meigs, D. (2019). Créativité, éducation aux médias et à l’information, translittératie : vers des humanités numériques. Quaderni, 98, 87–105.
  35. Friedman, Y. (2018). L’univers erratique – et si les lois de la nature ne suivaient aucune loi ? Éditions de l’Éclat, Paris.
  36. Giarini, O. and Stahel, W.R. (1990). Les limites du certain : affronter les risques dans une nouvelle économie de service. Presses polytechniques et universitaires romandes, Lausanne.
  37. Glassey, J., Schaer, E., Porjazoska Kujundziski, A., Meshko, V., Madeira, L.M., Polakovic, M. and Kockmann, N. (2016). Improving teaching effectiveness in chemical engineering education [Online]. Available at: https://research.ncl.ac.uk/iteacheu/dissemination/iTeach-ICSSH_2016_1.pdf.
  38. Hempel, C.G. (1956). The Validation of Scientific Theories. P. Franck, Boston.
  39. Hobbes, T. (1991). Man and Citizen: De Homine and De Cive. Hackett Publishing, Indianapolis.
  40. Hornsey, M. (2019). Pourquoi de plus en plus de personnes rejettent la science malgré les faits ? [Online]. Available at: https://dailygeekshow.com/rejet-science-faits/.
  41. Hottois, G. (1992). Le règne de l’opératoire. In La techno-science : les fractures des discours, Prades, J. (ed.). L’Harmattan, Paris.
  42. Huxley, A. (2015). Science, Liberty and Peace. Distributed Proofreaders Canada, [Online]. Available at: https://alor.org/Storage/Library/PDF/Huxley%20AL%20%20Science%20Liberty%20and%20Peace.pdf.
  43. Illich, I. (2004). Énergie et équité. Fayard, Paris.
  44. Jünger, F.G. (2018). La perfection de la technique. Allia, Paris.
  45. Kerven, G.Y. (2007). Histoire de cindyniques, émergence de nouveaux patterns. In Intelligence de la complexité, Le Moigne, J.-L. (ed.). Éditions de l’Aube, La Tour-d’Aigues, 131–148.
  46. Keynes, J.M. (1996). Essais sur la monnaie et l’économie. Eyrolles, Paris.
  47. Koestler, A. (1964). Darkness at Noon. Penguin Group, London.
  48. Latouche, S. (2013). Jacques Ellul – contre le totalitarisme technicien. Le Passager clandestin, Neuvy-en-Champagne.
  49. Latour, B. (2007a). L’espoir de Pandore – pour une version réaliste de l’activité scientifique. La Découverte, Paris.
  50. Latour, B. (2007b). Petites leçons de sociologie des sciences. La Découverte, Paris.
  51. Leibniz, G.W. (1996). New Essays on Human Understanding. Translated by Remnant, P. and Bennett, J. Cambridge University Press, Cambridge.
  52. Livio, M. (2013). Brilliant Blunders: From Darwin to Einstein – Colossal Mistakes by Great Scientists that Changed Our Understanding of Life and the Universe. Simon and Schuster, New York.
  53. Mahler, G. (2018). Anagrammes à quatre mains. Actes Sud, Arles.
  54. McNeill, J.R. and McNeill, W.H. (2003). The Human Web – A Bird’s-eye View of World History. W.W. Norton, New York.
  55. Michéa, J.-C. (2008). La double pensée – retour sur la question libérale. Champs Essais, Paris.
  56. Miller, R. (2014). Anticipation : la discipline de l’incertitude. In La prospective scientifique en action, Durance, P. (ed.). Odile Jacob, Paris, 363–369.
  57. Nietzsche, F. (1911). The Dawn of Day. Translated by McFarland Kennedy J. The MacMillan Company, New York.
  58. Orwell, G. (2007). The Collected Non-fiction: Essays, Articles, Diaries and Letters, 1903–1950. Penguin, London.
  59. Passet, R. (2011). René Passet : la quête d’une bioéconomie transdisciplinaire. Natures Sciences Sociétés, 19, 410–421.
  60. Philippe, J. (2012). L’innovation managériale, comment innover dans l’univers bancaire ? In L’art du management de l’innovation dans le service public, Euroconsulting Group (ed.). Eurogroup, Paris, 79–102.
  61. Pompidou, A. (2004). Pour une renaissance de la culture scientifique et technique. Assises nationales de la culture scientifique et technique, Axiales, 26–31.
  62. Proust, M. (2016). Remembrance of Things Past, Volume 3. Translated by Scott, C.K. Moncrieff, C.K. Penguin, United Kingdom.
  63. Rostand, J. (1959). Discours de réception de Jean Rostand [Online]. Available at:: http://www.academie-francaise.fr/discours-de-reception-de-jean-rostand.
  64. Rovere, M. (2019). Que faire des cons – pour ne pas en rester un soi-même. Flammarion, Paris.
  65. Santé-Magazine (2018). Stress [Online]. Available at: https://www.santemagazine.fr/sante/fiche-maladie/stress-177599.
  66. Schaer, É. (1997). Conception d’un procédé pour la production de microparticules filtrables et redispersables. PhD thesis, University of Lorraine, Nancy.
  67. Serieyx, H. (2014). Le choc du réel. Eyrolles, Paris.
  68. Sévilla, J. (2000). Le terrorisme intellectuel de 1945 à nos jours. Perrin, Paris.
  69. Silver, N. (2013). The Signal and the Noise: The Art and Science of Prediction. Penguin, London.
  70. Simondon, G. (2018). Imagination et invention. PUF, Paris.
  71. Simone, R. (2012). Pris dans la toile – l’esprit du temps du Web. Gallimard, Paris.
  72. Sokal, A. and Brichmont, J. (1997). Impostures intellectuelles. Odile Jacob, Paris.
  73. Stengers, I. (2006). La vierge et le neutrino – le scientifique dans la tourmente. Les Empêcheurs de penser en rond, Paris.
  74. Stokes, D.E. (1996). Pasteur’s Quadrant – Basic Science and Technological Innovation. Brookings Institution Press, Washington.
  75. Taylor, A.J.P. (1963). Mistaken lessons from the past. The Listener, 6 June.
  76. Ventre, M. (2019). JNI 2019 : réunir la communauté scientifique française [Online]. Available at: https://www.techniques-ingenieur.fr/actualite/articles/jni-2019-reunir-la-communaute-scientifique-francaise-64465/.
  77. Verdo, Y. (2018). Le violon d’Einstein – variations sur le temps, les quantas, l’infini. Odile Jacob, Paris.
  78. Virilio, P. (2010). L’administration de la peur. Textuel, Paris.
  79. von Foerster, H. and Piaget, J. (2000). Intelligence de la complexité. Éditions de l’Aube, La Tour d’Aigues.
  80. Whitehead, A.N. (1967). Adventures of Ideas. Simon and Schuster, New York.

Introduction

  1. ADB – Asian Development Bank (2017). Innovations in knowledge and learning: Postsecondary education reform to support employment and inclusive growth [Online]. Available at: http://www.adb.org/sites/default/files/publication/385711/innovations-knowledge-learning.pdf.
  2. Alberts, B., Kirschner, M.W., Tilghman, S. and Varmus, H. (2014). Rescuing US biomedical research from its systemic flaws. Proceedings of the National Academy of Sciences, 111, 5773–5777.
  3. Anderson, R. (2019). Research futures – Drivers and scenarios for the next decade [Online]. Available at: https://www.elsevier.com/__data/assets/pdf_file/0007/847960/Research-Futures_Summary.pdf.
  4. André, J.-C. (2019). Industry 4.0: Paradoxes and Conflicts. ISTE Ltd, London and John Wiley & Sons, New York.
  5. Ardoino, J. (1996). Éducation et politique aux regards de la pensée complexe [Online]. Available at: http://www.arianesud.com.
  6. Bigot, B. (2018). Chimie et biologie de synthèse : les applications [Online]. Available at: http://up-magazine.info/index.php?option=com_content&view=article&id=7551:chimie-et-biologie-de-synthese-les-applications&catid=123:innovations-vertes&Itemid=2037&utm_source=newsletter_639&utm_medium=email&utm_campaign=up-nl-vnew-quot.
  7. Boudon, R. (2010). La sociologie comme science. La Découverte, Paris.
  8. Bourdieu, P. (1976). Le sens pratique. Actes de la recherche en sciences sociales, 2, 2–31.
  9. Bourg, D. and Schlegel, J.L. (2001). Parer aux risques de demain : le principe de précaution. Le Seuil, Paris.
  10. Childers, T.L. and Rao, A.R. (1992). The influence of familial and peer-based reference groups on consumer decisions. Journal of Consumer Research, 19, 198–211.
  11. Conrad, P. (1999). Modern Times, Modern Places: Life and Art in the 20th Century. Alfred A. Knopf, New York.
  12. De Perthuis, C. (2009). Et pour quelques degrés de plus… Nos choix économiques face au risque climatique. Pearson, Paris.
  13. Descusse, J. (2019). Communications privées. Unpublished documents, January 11.
  14. Dussutour, A. (2017). Tout ce que vous avez voulu savoir sur le BLOB sans jamais oser le demander. J’ai Lu, Paris.
  15. EFCE – European Federation of Chemical Engineering (2016). Interdisciplinary research policy and practice report [Online]. Available at: http://www.hefce.ac.uk/media/HEFCE,2014/Content/Events/2016/Interdisciplinary,research,Policy,and,practice/IDR_conference_report.pdf.
  16. EU – European Union (2005). Charte européenne du chercheur [Online]. Available at: http://ec.europa.eu/eracareers/pdf/eur_21620_en-fr.pdf.
  17. Fitreman, J. (2004). États généraux de la recherche 2004 [Online]. Available at: http://cip-etats-generaux.apinc.org/article.php3?id_article=475.
  18. Foley, G. (2016). Reflections on interdisciplinarity and teaching chemical engineering on an interdisciplinary degree programme in biotechnology. Education for Chemical Engineers, 14, 35–42.
  19. Frezza, S., Nordquest, D. and Moodey, R. (2013). Knowledge-generation epistemology and the foundations of engineering. In IEEE Frontiers in Education Conference (FIE). Oklahoma, 818–824.
  20. Ganascia, J.G. (2010). Science x.0. In Plaidoyer pour réconcilier les sciences et la culture, Haigneré, C. (ed.). Le Pommier, Paris, 182–204.
  21. Gastaldi, L. and Midler, C. (2005). Innovation intensive et dynamique de l’activité de recherche. Le cas d’un groupe de chimie de spécialités. Revue Française de Gestion, 31, 1–15 [Online]. Available at: https://halshs.archives-ouvertes.fr/hal-00262871/document.
  22. Gaudin, T. (1978). L’écoute des silences. 10/18, Paris.
  23. Girel, M. (2013). Le doute à l’égard des sciences : l’ignorance produite et instrumentalisée. In Partager la science ; l’illettrisme scientifique en question, Bourguignon, J.-P., Chevallier-Le Guyader, M.-F., Cho., S.-K., Delacote, G., De Vries, M.J., Férey, G., Ferrini Mundy, J., Foucart, S., Girel, M., Hotyat, M., Houdé, O., Issola, R., Klein, E., Krankel, R.A., Le Guyader, H., Léna, P., Lussault, M., Matterson, C., Miraton, D., Monteil, J.-M., Natkin, S. and Wismann, H. (eds). Actes Sud/IHEST, Paris, 45–66.
  24. Girel, M. (2017). Science et territoire de l’ignorance. Quae, Versailles.
  25. Guy, B. (2012). Éthique et épistémologie : convergence entre la démarche épistémologique (chercher le vrai) et la démarche éthique (chercher le bien) : point de vue des sciences de l’ingénieur [Online]. Available at: https://halshs.archives-ouvertes.fr/hal-00736247/document.
  26. Hamel, M. (2019). Les innovations scientifiques et technologiques sont considérées comme des sources de progrès [Online]. Available at: https://fr.scribd.com/embeds/413759905/content?start_page=1&view_mode=scroll&access_key=key-5LRRVj08yeERA2pRoNl2&show_recommendations=true.
  27. Horckmans, M. (2016). Prospective en génie des procédés. ENSIC research and development project, University of Lorraine, Nancy.
  28. IESF – Société des ingénieurs et scientifiques de France (2016). Relever les défis d’une économie prospère et responsable [Online]. Available at: https://www.arts-et-metiers.asso.fr/index.php/page/article/id/1066-livre-blanc-iesf-relever-les-defis-d-une-ec-onomie-prospere-et-responsable.
  29. Jeger, F. and Peraldi, O. (2018). Appétence et désaffection pour les études scientifiques et techniques en France : où en sommes-nous ? [Online]. Available at: https://www.opinion-internationale.com/wp-content/uploads/2019/02/rapport1.cc.etudesscientifiques.final_.a5.2.pdf.
  30. Kourilsky, P. (2014). Le jeu du hasard et de la complexité ; la nouvelle science de l’immunologie. Odile Jacob, Paris.
  31. Lahtinen, V. and Stenvall, A. (2017). Towards a unified framework for decomposability of processes. Synthese, 194, 4411–4427.
  32. Lazar, P. (1983). Les explorateurs de la santé. Odile Jacob, Paris.
  33. Le Hir, P. (2004). La société en mal de science. Le Monde, 22 December.
  34. Leonelli, S. (2007). What is in a model? Combining theoretical and material models to develop intelligible theories. In Modeling Biology – Structure Behaviors Evolution, Laubichler, M.D. and Müller, G.B. (eds). MIT Press, Cambridge, 15–35.
  35. Le Roux, R. (2014) Cybernétique et société au XXIe siècle (Preface). In Cybernétique et société. L’usage humain des êtres humains, Wiener, N. (ed.). Le Seuil, Paris.
  36. Mahé, A. (2002). La communication scientifique en (r)évolution. Thesis, Université Claude Bernard, Lyon.
  37. Mathieu, C. (2018). Quelles compétences pour réussir ? [Online]. Available at: http://theconversation.com/quelles-competences-pour-reussir-90458.
  38. MERN – Norwegian Ministry of Education and Research (2017). Quality culture in higher education [Online]. Available at: http://www.ehea.info/Upload/AG2_Learning_Teaching_2_Hearing_1.pdf.
  39. Miller, R. and Côté, M. (2010). L’innovation : le paradoxe européen [Online]. Available at: http://www.laprospective.fr/dyn/francais/cercle_des_entrepreneurs/grand_prix_2009/imp2010millercote.pdf.pdf.
  40. Nietzsche, F. (1989). La naissance de la tragédie. Gallimard, Paris.
  41. Nora, D. (2015). Lettres à mes parents sur le monde de demain. Grasset, Paris.
  42. Petit, A. (2019). Qu’est-ce qu’un bon chercheur ? [Online]. Available at: https://www.Franceculture.fr/emissions/du-grain-a-moudre-dete/du-grain-a-moudre-dete-emission-du-jeudi-11-juillet-2019?utm_medium=Social&utm_source=Facebook#Echobox=1563098454.
  43. Piganiol, P. (2004). Le chercheur est-il apte à la recherche ? Le Banquet, 19, 4.
  44. Ramunni, G. (1995). Les sciences pour l’Ingénieur ; histoire du rendez-vous des Sciences et de la Société. CNRS, Paris.
  45. Rosolen, S.-G., Hugot, J.-P., Veillerot, F. and Pluchet, A. (2018). Être chercheur au XXIe siècle dans un environnement numérique [Online]. Available at: http://documents.irevues.inist.fr/handle/2042/68225.
  46. Schaer, É. and André, J.-C. (2020a). Process Engineering Renewal 1: Background and Training. ISTE Ltd, London and John Wiley & Sons, New York.
  47. Schaer, É. and André, J.-C (2020b). Process Engineering Renewal 3: Prospects. ISTE Ltd, London and John Wiley & Sons, New York.
  48. Stengers, I. (2006). La vierge et le neutrino – le scientifique dans la tourmente. Les Empêcheurs de penser en rond, Paris.
  49. Valéry, P. (1974). Cahiers La Pléiade. Gallimard, Paris.
  50. WEF – World Economic Forum (2019). Top 10 emerging technologies 2019 [Online]. Available at: https://www.weforum.org/reports/top-10-emerging-technologies-2019.
  51. Yegros-Yegros, A., Rafols, I. and D’Este, P. (2015). Does interdisciplinary research lead to higher citation impact? The different effect of proximal and distal interdisciplinarity. PLOS ONE, 12 August.

Chapters 1 to 6

  1. Abkarian, M. (2011). La micro-fluidique [Online]. Available at: http://www.coulomb.univ-montp2.fr/perso/manouk.abkarian/manouk_abkarian_Homepage/Links-files/microflvidiqve.pdf.
  2. Achard, P. (2005). Le changement sans perte d’authenticité. Hermes, Paris.
  3. Adelaide University (2017). An overview of energy efficiency opportunities in chemical engineering [Online]. Available at: https://cms.qut.edu.au/_data/assets/pdf_file/0020/533045/flatpack3-an-overview-of-energy-efficiency-opportunities-in-chemical-engineering.pdf.
  4. ADEME – Agence de l’environnement et de la maîtrise de l’énergie (2017a). Moins de biens et plus de performance d’usage. 6–7 [Online]. Available at: http://www.atemis-lir.fr/wp-content/uploads/2017/06/ADEME_MAG106_calameo_07-07.pdf.
  5. ADEME – Agence de l’environnement et de la maîtrise de l’énergie (2017b). Logement : des clés pour accélérer la rénovation énergétique [Online]. Available at: https://presse.ademe.fr/2017/08/ademevous-logement-des-cles-pour-accelerer-la-renovation-energetique.html.
  6. ADEME – Agence de l’environnement et de la maîtrise de l’énergie (2017c). Vers une économie de la fonctionnalité à haute valeur environnementale et sociale en 2050 – les dynamiques servicielle et territoriale au cœur du nouveau modèle [Online]. Available at: http://www.ademe.fr/sites/default/files/assets/documents/prospective_ef_201705_rapport.pdf.
  7. ADEME – Agence de l’environnement et de la maîtrise de l’énergie (2018). Qu’est-ce que l’ACV ? [Online]. Available at: https://www.ademe.fr/expertises/consommer-autrement/passer-a-laction/dossier/lanalyse-cycle-vie/quest-lacv.
  8. ADEME – Agence de l’environnement et de la maîtrise de l’énergie (2019). Déchets chiffresclés – l’essentiel 2018 [Online]. Available at: https://www.ademe.fr/sites/default/files/assets/documents/dechets_chiffres_cles_essentiel2018_010690.pdf.
  9. AIP – American Institute of Physics (2016). NSF Director Córdova proposes nine big ideas for the foundation [Online]. Available at: https://www.aip.org/fyi/2016/nsf-director-c%C3%B3rdova-proposes-nine-big-ideasfoundation.
  10. Akmal, J.S., Salmi, M., Mäkitie, A., Björkstrand, R. and Partanen, J. (2018). Implementation of industrial additive manufacturing: Intelligent implants and drug delivery systems. Journal of Functional Biomaterials, 9, 41.
  11. Alberts, B., Kirschner, M.W., Tilghman, S. and Varmus, H. (2014). Rescuing US biomedical research from its systemic flaws. Proceedings of the National Academy of Sciences, 111, 5773–5777.
  12. Alotto, P.G., Guarnieri, M. and Moro, F. (2014). Redox flow batteries for the storage of renewable energy: A review. Renewable and Sustainable Energy Reviews, 29, 325–335.
  13. Amartya, S. (2004). L’économie est une science morale. La Découverte, Paris.
  14. Amini, H., Sollier, E., Masaeli, M. and Xie, Y. (2013). Engineering fluid flow using sequenced microstructures. Nature Communications, 4.
  15. Andami, K. (2017). L’encapsulage du génie humain en entreprise [Online]. Available at: http://www.mauvaisenouvelle.fr/?article=monde-lencapsulage-du-genie-humain-en-entreprise--1068.
  16. Anders, G. (2002). L’obsolescence de l’Homme. Ivréa, Paris.
  17. Anderson, C. (2012). Makers : la nouvelle révolution industrielle. Pearson, Paris.
  18. Anderson, R. (2019). Research futures – Drivers and scenarios for the next decade [Online]. Available at: https://www.elsevier.com/_data/assets/pdf_file/0011/847955/Research_Futures_full_report_Feb2019.pdf.
  19. André, J.-C. (2013). Towards a Socially Responsible Research (SRR) charter in Engineering Sciences at CNRS level. International Journal of Technoethics, 4, 39–51.
  20. André, J.-C. (2017a). From Additive Manufacturing to 3D/4D Printing 1: From Concepts to Achievements. ISTE Ltd, London and John Wiley & Sons, New York.
  21. André, J.-C. (2017b). From Additive Manufacturing to 3D/4D Printing 2: Current Techniques, Improvements and their Limitations. ISTE Ltd, London and John Wiley & Sons, New York.
  22. André, J.-C. (2017c). From Additive Manufacturing to 3D/4D Printing 3: Breakthrough Innovations: Programmable Material, 4D Printing and Bio-printing. ISTE Ltd, London and John Wiley & Sons, New York.
  23. André, J.-C. (2019). Industry 4.0: Paradoxes and Conflicts. ISTE Ltd, London and John Wiley & Sons, New York.
  24. André, J.-C., Le Mehaute, A. and De Witte, O. (1984). Dispositif pour réaliser un modèle de pièce industrielle. French patent no. 84 11 241, 16 July.
  25. André, J.-C., Héry, M. and Midoux, N. (1997). Protection de l’environnement et hygiène industrielle : vers des procédés propres et sûrs ?. Cahiers de Notes Documentaires, 168, 501–506.
  26. André, J.-C., Falk, L., Biscans, B., Legrand, J., Cappy, A., Ho-Ba-Tho, M.C., Escudié, D., Richard, A., Tassin, J.-F. and Laperche, B. (2013). Challenges in Process Engineering (PE) for a responsible and sustainable progress. In Proceedings of the Summer School Research Innovation Network, Belfort, August 28–30.
  27. André, J.-C., Falk, L., Biscans, B., Legrand, J., Cappy, A., Ho-Ba-Tho, M.C., Escudié, D., Richard, A., Tassin, J.-F. and Laperche, B. (2014). GP 2020. Report to the CNRS, Paris.
  28. André, J.-C., Gallais, L. and Amra, C. (2017). Procédé pour la réalisation d’un objet tridimensionnel par un processus de photo-polymérisation multi-photonique et dispositif associé. French patent no. 16-59211 from September 28, 2016 and filing of an international patent request (PCT) concerning the invention in reference: no. PCT/FR2017/052622, September 27, 2017.
  29. Ardoino, J. (1996). Éducation et politique aux regards de la pensée complexe [Online]. Available at: http://www.arianesud.com.
  30. Aries, P. (2010). La simplicité volontaire contre le mythe de l’abondance. La Découverte, Paris.
  31. Aro, E.M. (2016). From first generation biofuels to advanced solar biofuels. Ambio, 45, 24–31.
  32. Artus, P. and Virard, M.P. (2008). Globalisation : le pire est à venir. La Découverte, Paris.
  33. AT – Académie des technologies (2017). Industrie du futur : du système technique 4.0 au système social [Online]. Available at: http://academie-technologies-prod.s3.amazonaws.com/2017/12/22/14/57/25/713/Industriedufutur.pdf.
  34. ATKearney (2012). Chemical industry vision 2030: A European perspective [Online]. Available at: http://www.atkearney.com/documents/10192/536196/Chemical+Industry+Vision+2030+A+European+Perspective.pdf/7178b150-22d9-4b50-9125-1f1b3a9361ef.
  35. Atkins, P. (2012). The promise of chemistry. Industry & Chemistry, 21–23.
  36. Atlan, H. (1999). Les étincelles du hasard. Le Seuil, Paris.
  37. Audéoud, N. (2017). L’usine du futur, un enjeu technologique, managérial et organisationnel. Informations entreprise, 164, 18–19.
  38. Aumercier, S. (2018). De la rareté des ressources aux paris sur l’avenir [Online]. Available at: https://iatranshumanisme.com/2018/05/14/de-la-rarete-des-ressources-aux-paris-sur-avenir/.
  39. Australian Government (2019). A national strategy for hydrogen [Online]. Available at: https://consult.industry.gov.au/national-hydrogen-strategy-taskforce/national-hydrogen-strategy-request-for-input/supporting_documents/nationalhydrogenstrategyrequestforinputdiscussionpaper.pdf.
  40. Ayhan (2016). Energy facilities in nanotechnology. Energy Sources Part A: Recovery, Utilization & Environmental Effects, 38, 1954–1961.
  41. Bachelard, G. (1957). La poétique de l’espace. PUF, Paris.
  42. Bachelard, G. (1984). The New Scientific Spirit. Translated by Goldhammer, A. Beacon Press, Boston.
  43. Banque Mondiale (2017). La transition vers les énergies propres fera augmenter la demande de minéraux, indique un nouveau rapport de la Banque mondiale [Online]. Available at: https://www.banquemondiale.org/fr/news/press-release/2017/07/18/clean-energy-transition-will-increase-demand-for-minerals-says-new-world-bank-report.
  44. Bar-Cohen, Y. (2005). Bio-mimetics: Mimicking and inspired-by biology [Online]. In Smart Structures and Materials: Electroactive Polymer Actuators and Devices (EAPAD), Bar-Cohen, Y. (ed.). SPIE, Anaheim. Available at: https://trs.jpl.nasa.gov/bitstream/handle/2014/37719/05-0364.pdf?sequence=1&isAllowed=y.
  45. Bar-Cohen, Y. (2006). Bio-mimetics – Using nature to inspire human innovation. Bio-inspiration & Bio-mimetics, 1, P1–P12.
  46. Bar-On, Y.M., Phillips, R. and Milo, R. (2018). The biomass distribution on Earth. PNAS, 115, 6506–6511.
  47. Barber, J. (2009). Photosynthetic energy conversion: Natural and artificial. Chem. Soc. Rev., 38, 185–196.
  48. Baroud, C.N. and Willaime, H. (2004). Multiphase flows in microfluidics. C.R. Physique, 5, 547–555.
  49. Baudrillard, J. (2001). Le système des objets. Gallimard, Paris.
  50. Bayon, S. (2012). Réflexion sur les aspects énergétiques, économiques et éthiques liés aux énergies renouvelables : le cas des éoliennes. ENSIC R&D Project, Nancy.
  51. Becaert, V. (2010). Conception environnementale et cycle de vie. Presses internationales Polytechnique, Montreal.
  52. Becaert, V. (2011). L’analyse du cycle de vie environnementale et sociale : une boussole vers le développement durable [Online]. Available at: https://www.sifee.org/static/uploaded/Files/ressources/actes-des-colloques/montreal/pleniere-1-1/BECAERT_DIAPO.pdf.
  53. Béguin, C. (2016). Une chronique de l’hydrogène : histoire des méthodes de production et des applications. Presses Polytechniques et Universitaires Romandes, Lausanne.
  54. Belboom, S. and Leonard, A. (2016). Teaching of Life Cycle Assessment methodology to sensitize future engineers to sustainable development [Online]. Available at: https://orbi.uliege.be/bitstream/2268/202511/1/Leonard_belboom_EESD2016.pdf.
  55. Bell, A., Chetty, R., Jaravel, X., Petkova, N. and Van Reenen, J. (2019). Do tax cuts produce more Einsteins? The impact of financial incentives vs. exposure to innovation on the supply of inventors. SCEP working document, 1597. [Online]. Available at: http://cep.lse.ac.uk/pubs/download/dp1597.pdf.
  56. Bélot, J.M. (2012). Conception biomimétique. Définition et normalisation. Note de veille. Centre technique des industries mécaniques (CETIM) [Online]. Available at: http://www.comitemeca-idf.com/content/download/5351/30680/file/2012+10+02+NV-B1201-conception-biomimetique-definition-normalisation+v2.pdf.
  57. Bengio, Y., Goodfellow, I. and Courville, A. (2016). Deep Learning. MIT Press, Boston.
  58. Benyus, J.M. (2011). Bio-mimétisme – quand la nature inspire des innovations durables. Rue de l’échiquier, Paris.
  59. Berger, M. (2009). Nano-society Pushing the Boundaries of Technology. Royal Society of Chemistry, London.
  60. Bhushan, B. (2009). Bio-mimetics: Lessons from nature – An overview. Philosophical Transactions of the Royal Society a – Mathematical Physical and Engineering Sciences, 367, 1445–1486.
  61. BioPowerSystems (2015). Wave and tidal power conversion [Online]. Available at: http://www.biopowersystems.com.
  62. Blamont, J. (2004). Introduction au siècle des menaces. Odile Jacob, Paris. Blandin, T. (2017). Un monde sans travail ? Le Seuil, Paris.
  63. Bonnet, C., Carcanague, S., Hache, E., Seck, G.S. and Simoën, M. (2018). Vers une géopolitique de l’énergie plus complexe ? Une analyse prospective tridimensionnelle de la transition énergétique (métaux et matériaux, technologies et brevets, les pays exportateurs d’hydrocarbures) [Online]. Available at: https://www.ifpenergiesnouvelles.fr/sites/ifpen.fr/files/inline-images/NEWSROOM/Regards%20%C3%A9conomiques/Etudes%20%C3%A9conomiques/projet%20ANR%20GENERATE/Policy+PAPER-GENERATE-Complexit%C3%A9+G%C3%A9opolitique+Energ%C3%A9tique.pdf.
  64. Bonser, R. (2006). Biomimicry and innovation in sustainable design: Understanding its innovation supporting characteristics compared to eco-design. Master’s thesis, University of Montréal, Montreal.
  65. Bos, C. (2019). Synthetic biology – Incredible opportunity or existential threat? [Online]. Available at: https://cleantechnica.com/2019/07/11/synthetic-biology-incredible-opportunity-or-existential-threat/?utm_source=CleanTechnica+News&utm_campaign=13a378a330-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-13a378a330-331991893.
  66. Boudon, R. (2010). La sociologie comme science. La Découverte, Paris.
  67. Boudrant, J., Guezennec, J. and Monsan, P. (2007). Bioprocédés. Techniques de l’Ingénieur, 10 November.
  68. Bougnoux, D. (1995). La communication contre l’information. Hachette, Paris.
  69. Bourdieu, P. (1990). The Logic of Practice. Translated by Nice, R. Stanford University Press, Stanford.
  70. Bourdieu, P. (1992). Réponses. Le Seuil, Paris.
  71. Bourdieu, P. (1996). Le champ scientifique. Actes de la Recherche en Sciences Sociales, 88–104.
  72. Bourdieu, P. (2001). Science de la science et réflexivité – cours au Collège de France. Raison d’agir, Paris.
  73. Bourg, D. and Schlegel, J.L. (2001). Parer aux risques de demain : le principe de précaution. Le Seuil, Paris.
  74. Bourguignon, J.P. (2019). How ERC changed the European funding landscape [Online]. Available at: https://erc.europa.eu/node/3615.
  75. Bourseau, P. (1993). Modélisation des connaissances de l’ingénieur de procédés : application de l’intelligence artificielle. PhD thesis, 4 UPMC, Paris.
  76. Bousquet, J. (2007). Chimie industrielle et génie des procédés [Online]. Available at: https://www.lactualitechimique.org/Chimie-industrielle-et-genie-des-procedes.
  77. Boy, D. (2017). Représentations sociales de l’effet de serre et du réchauffement climatique [Online]. Available at: https://www.ademe.fr/sites/default/files/assets/documents/representations-sociale-effet-serre-2017-rapport.pdf.
  78. Boyer, F. (2018). Cette IA prédit les réactions chimiques [Online]. Available at: https://www.futura-sciences.com/sciences/actualites/chimie-cette-ia-predit-reactions-chimiques-72869/.
  79. Boykoff, J. (2012). U.S. media coverage of the Cancún Climate Change Conference. Political Science and Politics, 45, 251–258.
  80. BPI – Banque publique d’investissement (2016). Silver économie : la mise en orbite [Online]. Available at: https://www.bpifrance.fr/A-la-une/Actualites/Silver-economie-la-mise-en-orbite-26823.
  81. Bran, F., Popescu, M.L. and Stanciu, P., (2016). Perspectives of silver economy in the European Union. Review of International Comparative Management, 17, 130–135.
  82. Branche, P.M. (2015). Impression 3D ; la fin annoncée des transports [Online]. Available at: http://www.voxlog.fr/dossier/13_2/logistique-et-transport-limpression-3d-remet-en-cause-la-supply-chain.
  83. Brandl, R., Kotsampopoulos, P., Lauss, G., Maniatopoulos, M., Nuschke, M., Montoya, J., Strasser, T. and Strauss-Mincu, D. (2018). Advanced Testing Chain Supporting the Validation of Smart Grid Systems and Technologies. In 2018 IEEE Workshop on Complexity in Engineering (COMPENG). Florence, 6–10 October.
  84. Broadways, D. (2018). Urgence du vivant : la bio-économie oblige les logiques libérales à se reformer [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7978:urgence-du-vivant-la-bioeconomie-oblige-les-logiques-liberales-a-se-reformer&catid=123:innovations-vertes&Itemid=2037.
  85. Bronner, G. (2003). L’empire des croyances. PUF, Paris.
  86. Brown, T. (2009). Change by Design: How Design Thinking Transforms Organizations and Inspires Innovation. Harper Collins, New York.
  87. Brown, L.R. (2013). Eco-economy – Building an Economy for the Earth. Routledge, London.
  88. Buclet, N. (2015). Écologie industrielle et économie circulaire : définitions et principes. In Économie circulaire et écosystèmes portuaires, Alix, Y., Mat, N. and Cerceau, J. (eds). EMS, Cormelles-le-Royal, 27–41 [Online]. Available at: http://sofiesgroup.com/wp-content/uploads/2016/04/2015_SefacilMat_EconomieCirculaire_Ports.pdf.
  89. Buxton, W. (2003). Performance by design: The role of design in software product development. In Proceedings of the Second International Conference on Usage-centered Design. Constantine & Lockwood Ltd., Rowley, 1–15.
  90. Canadell, J. and Carlson, D. (2017). Le bilan annuel du carbone de la planète. Climats, 66 [Online]. Available at: https://public.wmo.int/fr/ressources/bulletin/le-bilan-annuel-du-carbone-de-la-plan%C3%A8te.
  91. Capmas-Delarue, P. (2019). Ces maladies qui risquent d’exploser d’ici 2050 [Online]. Available at: https://www.medisite.fr/maladies-ces-maladies-qui-risquent-dexploser-dici-2050.5520327.42.html.
  92. Carbon Engineering (2019). 21 Mar Carbon Engineering concludes USD$68 million private investment round and proceeds with commercialization of carbon dioxide removal technology [Online]. Available at: https://carbonengineering.com/carbon-engineering-concludes-usd68-million-private-investment-round/.
  93. Carn, F. (2006). Intégration entre chimie douce et fluides complexes pour la genèse d’architectures poreuses hiérarchisées : synthèses, caractérisations et application. PhD thesis, Université Sciences et Technologies, Bordeaux I.
  94. Carrier, O. (2012). De la formation de gouttelettes : approche expérimentale à micro-échelle. PhD thesis. University of Lorraine, Nancy.
  95. Caruthers, J.M., Lauterbach, J.A., Thomson, K.T., Venkatasubramanian, V., Snively, C.M., Bhan, A., Katare, S. and Oskarsdottir, G. (2003). Catalyst design: Knowledge extraction from high throughput experimentation. In Understanding Catalysis from a Fundamental Perspective: Past, Present, and Future. Journal of Catalysis, Bell, A., Che, M. and Delgass, W.N. (eds). Elsevier, Amsterdam, 216, 98–109.
  96. Cassidy, E. (2019). Which countries use the most fossil fuels? [Online]. Available at: https://cleantechnica.com/2019/05/03/which-countries-use-the-most-fossil-fuels/?utm_source=CleanTechnica+News&utm_campaign=127f3e347c-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-127f3e347c-331991893.
  97. Castiglione, P., Falcioni, M., Lesne, A. and Vulpiani, A. (2008). Physique statistique – chaos et approches multi-échelles. Belin, Paris.
  98. Cayuela-Valencia, R. (2013). The Future of the Chemical Industry by 2050. Wiley-VCH, Weinheim.
  99. Cazzaniga, N.E., Jonsson, R., Pilli, R. and Camia, A. (2019). Wood Resource Balances of EU-28 and Member States. Technical report, EC Joint Research Center/Publications Office of the European Union, Luxembourg.
  100. CB Insights (2018). Future factory: How technology is transforming manufacturing [Online]. Available at: https://www.cbinsights.com/research/future-factory-manufacturing-tech-trends/?utm_source=SSTI+Weekly+Digest&utm_campaign=c7901c0b04-EMAIL_CAMPAIGN_2018_04_12&utm_medium=email&utm_term=0_ecf5992d4c-c7901c0b04-212419577#product.
  101. CDD – Cahiers du Développement Durable (2019). L’analyse du cycle de vie d’un produit ou d’un service [Online]. Available at: http://les.cahiers-developpement-durable.be/outils/analyse-du-cycle-de-vie/.
  102. CDE – Connaissance des Énergies (2018). L’éolien en Europe et dans le monde en 2017 [Online]. Available at: https://www.connaissancedesenergies.org/leolien-en-europe-et-dans-le-monde-en-2017-180214.
  103. CEFIC (2014). Evolution of competitiveness in the European chemical industry: Historical trends and future projects [Online]. Available at: https://cefic.org/app/uploads/2019/02/OXFORD_ECONOMICS_competitiveness_chemind_2014.pdf.
  104. Céline, L.F. (1972). Voyage au bout de la nuit. Folio, Paris.
  105. Céruti, M. (2006). Tâches aveugles, écologies du changement, dynamiques d’auto-organisation, 43–57. In Seconde cybernétique et complexité ; rencontres avec Heintz von Foerster, Andrrewsky, E. and Delorme, R. (eds). L’Harmattan, Paris.
  106. CESE – Comité économique, social et environnemental (2017). Le bio-mimétisme : s’inspirer de la nature pour innover durablement [Online]. Available at: https://www.ladocumentationfrancaise.fr/var/storage/rapports-publics/154000667.pdf.
  107. CGDD – Commissariat général au développement durable (2017a). Produire plus avec moins de matières : pourquoi ? [Online]. Available at: https://www.ecologique-solidaire.gouv.fr/sites/default/files/Th%C3%A9ma%20-%20Produire%20plus%20avec%20moins%20de%20mati%C3%A8res.pdf.
  108. CGDD – Commissariat général au développement durable (2017b). La fiscalité matières. Une opportunité pour une économie circulaire [Online]. Available at: https://www.ecologique-solidaire.gouv.fr/sites/default/files/Th%C3%A9ma%20-%20La%20fiscalit%C3%A9%20mati%C3%A8res.pdf.
  109. Chailleux, E., Audo, M., Bujoli, B., Queffelec, C., Legrand, J. and Lepine, O. (2012). Alternative Binder from microalgae: Algoroute project, 7–14. [Online]. Available at: https://hal.archives-ouvertes.fr/file/index/docid/851063/filename/doc00012102.pdf.
  110. Chanmanwar, R.M., Balasubramaniam, R.R. and Wankhade, L. (2013). Application and manufacturing of microfluidic devices: Review. Int. J. Modern Eng. Res., 3, 849–856.
  111. Chaouch, M.F. (2017). L’analyse de l’intégration des méthodes et principes de la créativité organisationnelle en conception de produits. Environmental design thesis, Université du Québec, Montreal [Online]. Available at: http://www.archipel.uqam.ca/10450/1/M15076.pdf.
  112. Chaouki, J. (2017). S’inspirer de la nature pour inventer les meilleurs procédés innovants – grand dossier : du génie dans nos poubelles [Online]. Available at: https://www.polymtl.ca/carrefour-actualite/magazine-poly/sinspirer-de-la-nature-pour-inventer-les-meilleurs-procedes-innovants.
  113. Chapon, C. (2017). L’économie de la connaissance [Online]. Available at: https://www.laculturegenerale.com/economie-de-la-connaissance/.
  114. Charles, H. (2016). Réflexions sur la deuxième session du colloque ‘Modélisation : succès et limites’. In Actes du colloque, Académie des Technologies/CNRS, Paris, 81–88.
  115. Charpentier, J.C. and McKenna, T.F. (2004). Managing complex systems: Some trends for the future of chemical and process engineering. Chemical Engineering Science, 59, 1617–1640.
  116. Chen, J.C. (2006). Where is the chemical engineering industry headed? [Online]. Available at: https://www.researchgate.net/publication/298493845_Where_is_the_chemical_engineerig_industry_headed.
  117. Chinesta, F., Abisset-Chavanne, E., Aguado, J.A., Borzacchiello, D., Lopez, E., Barasinski, A., Gonzalez, D., Cueto, E., Ghnatios, C. and Duval, J.L. (2016). Big-data, machine learning, data-based models and data-driven simulations, avatars and internet of things – Boarding on the 4th industrial revolution. In Colloque, Académie des Technologies/CNRS, Paris, 131–145.
  118. Choi, H.S., Entenmann, S.K., Wiesmeth, M., Blesl, M. and Wagner, M. (2019). Potential trade-offs of employing perennial biomass crops for the bioeconomy in the EU by 2050: Impacts on agricultural markets in the EU and the world. GCB Bioenergy, January, 1–22.
  119. Christensen, J. (2001). Kalundborg [Online]. Available at: http://www.ecoparc.com/ecologie-industrielle/kalundborg.php.
  120. Chung, B.G., Lee, K.H., Khademhosseini, A. and Lee, S.H. (2012). Microfluidic fabrication of micro-engineered hydrogels and their application in tissue engineering. Lab on a Chip, 12, 45–59.
  121. Circle Economy (2018). The Circularity Gap report – How the linear economy is failing people and the planet and what we can do to close the global circularity gap [Online]. Available at: https://www.circularity-gap.world/2018.
  122. Clean Technology Trade Alliance (2018). Clean Technology Trade Alliance [Online]. Available at: https://www.environmental-expert.com/companies/clean-technology-trade-alliance-34271/.
  123. Clift, R. (1995). Clean technology – An introduction. Chemical Technology and Biotechnology, 62, 321–326.
  124. CNRS (2013). Stratégie interdisciplinaire du CNRS en nanosciences et nanotechnologies. Report, CNRS, Paris.
  125. CNRS (2019). Enquête Énergie 2018 – synthèse des résultats – le potentiel de recherche des unités liées au CNRS dans le domaine de l’Énergie en 2017 [Online]. Available at: https://www.celluleenergie.cnrs.fr/Bilans-des-Enquetes-Energie.
  126. Cogne, G., Rügen, M., Bockmayr, A., Titica, M., Dussap, C.G., Cornet, J.F. and Legrand, J. (2011). A model-based method for investigating bioenergetic processes in auto-trophically growing eukaryotic microalgae: Application to the green algae Chlamydomonas reinhardtii. AIChE Journal, 27, 631–640.
  127. Colón, G. (2016). Towards the hydrogen production by photo-catalysis. Hydrogen from oxygenated molecules. Applied Catalysis A, General, 518, 48–59.
  128. Combe, M. (2018). La pollution de l’air baisse nos capacités cognitives [Online]. Available at: https://www.techniques-ingenieur.fr/actualite/articles/la-pollution-de-lair-baisse-nos-capacites-cognitives-61567/.
  129. Commenge, J.M., Laurent, F. and Corriou, J.-P. (2008). Optimal design for flow uniformity in microchannel reactors. AIChE Journal, 48, 345–358.
  130. Conso Globe (2019). Consommation mondiale d’énergie (TEP) [Online]. Available at: https://www.planetoscope.com/Source-d-energie/229-consommation-mondiale-d-energie-en-tep-.html.
  131. Cordis (2019). Results pack on nano-enhanced industrial materials – Funding the next European industrial revolution [Online]. Available at: https://publications.europa.eu/en/publication-detail/-/publication/93e02a19-28f9-11e9-8d04-01aa75ed71a1/language-en/format-PDF/source-104253960.
  132. Correa, D.F., Beyer, H.L., Possingham, H.P. and Thomas-Hall, S.R. (2017). Biodiversity impacts of bioenergy production: Microalgae vs. first generation biofuels. Renewable and Sustainable Energy Reviews, 74, 1131–1146.
  133. Costa, R., Moggridge, G.D. and Saraiva, P.M. (2006). Chemical product engineering: An emerging paradigm within chemical engineering. AIChE Journal, 52, 1976–1986.
  134. Cotsaftis, M. (2007). What makes a system complex? An approach to self-organization and emergence [Online]. Available at: http://arxiv.org/ftp/arxiv/papers/0706/0706.0440.pdf.
  135. CRE – Commission de régulation de l’énergie (2019). Coûts et rentabilités du grand photovoltaïque en métropole continentale [Online]. Available at: https://www.cre.fr/content/download/20543/261330.
  136. Crine, M. (2013). Approche de la complexité en génie des procédés [Online]. Available at: http://hdl.handle.net/2268/163395.
  137. Da Lage, A., Amat, J.P., Frérot, A.M., Guichard-Anguis, S., Julien-Laferrière, B. and Wicherek, S.P. (2008). L’après développement durable : espace, nature, culture et qualité. Ellipses, Paris.
  138. Dale, M.B., Anand, M. and Desrochers, R.E. (2007). Measuring information-based complexity across scales using cluster analysis. Ecological Informatics, 2, 121–127.
  139. Dario, P. (2017). Industry 4.0 and Factory of the Future initiatives in Europe: Focus on Italy [Online]. Available at: http://sssa.bioroboticsinstitute.it/sites/default/files/ExtEvents/Dario_ppt.pdf.
  140. Darkow, I.L. and von der Gracht, H.A. (2013). Scenarios for the future of the European process industry: The case of the chemical industry. European Journal of Futures Research, 1, 3–12.
  141. Das, P. and Horton, R. (2017). Pollution, health, and the planet: Time for decisive action. The Lancet, 391, 407–408.
  142. Datta, A.K. (2016). Toward computer-aided food engineering: Mechanistic frameworks for evolution of product, quality and safety during processing. Journal of Food Engineering, 176, 9–27.
  143. De Hemptinne, J.C., Ferrasse, J.-H., Gorak, A., Kjelstrup, S., Maréchal, F., Baudouin, O. and Gani, R. (2017). Energy efficiency as an example of cross-discipline collaboration in chemical engineering. Chemical Engineering Research and Design, 119, 183–187.
  144. De Margerie, V. (2018). Incertitude sur les métaux face aux véhicules électriques. Zone Bourse [Online]. Available at: https://www.zonebourse.com/FAURECIA-4647/actualite/Incertitude-sur-les-metaux-face-aux-vehicules-electriques-26845363/.
  145. De Miranda, L. (2010). L’art d’être libre au temps des automates. Max Milo, Paris.
  146. De Perthuis, C. (2009). Et pour quelques degrés de plus… Nos choix économiques face au risque climatique. Pearson, Paris.
  147. Dearborn, D.C. and Simon, H.A. (1958). Selective perception: A note on the departmental identifications of executives. Sociometry, 140–144.
  148. Debonneuil, M. (2007). L’espoir économique : vers la révolution du quaternaire. Bourin, Paris.
  149. Debord, G. (1996). La société du spectacle. Folio, Paris.
  150. Debord, G. (2006). Œuvres. Gallimard, Paris.
  151. Deloitte (2014). The decade ahead: Preparing for an unpredictable future in the global chemical industry [Online]. Available at: http://www2.deloitte.com/be/en/pages/manufacturing/articles/the-decade-ahead-unpredictable-future-global-chemical-industry.html.
  152. Deloitte (2015). The future of manufacturing; making things in a changing world [Online]. Available at: https://www2.deloitte.com/content/dam/Deloitte/my/Documents/manufacturing/my-mfg-future-of-manufacturing-noexp.pdf.
  153. Deloitte (2017). What key competencies are needed in the digital age? The impact of automation on employees, companies and education [Online]. Available at: https://www2.deloitte.com/content/dam/Deloitte/ch/Documents/innovation/ch-en-innovation-automation-competencies.pdf.
  154. Deloitte Digital (2015). L’entreprise agile [Online]. Available at: https://www.deloitte-france.fr/formulaire/telechargement/entreprise-agile/?_ga=2.167680826.567063936.1495271100-1511336673.1495271095.
  155. Déoux, P.G. and Baillard, V. (1997). Inforoute, urbanisme et aménagement du territoire : les effets de l’émergence des nouvelles technologies de communication sur l’aménagement du territoire. Master’s thesis, Commission de la culture du Québec, Quebec, 44.
  156. Descusse, J. (2019). Communications privées. Unpublished documents, 11 January.
  157. Deshmukh, A.V., Talavage, J.J. and Barash, M.M. (1998). Complexity in manufacturing systems. Part 1: Analysis of static complexity. IIE Transactions, 30, 645–655.
  158. Di Castri, F. (1992). L’écologie en temps réel. In La terre outragée : les experts sont formels. Autrement, Paris.
  159. Diaz, S. (2008). Panel on future of chemical engineering, bio-systems and process systems engineering [Online]. Available at: http://cepac.cheme.cmu.edu/pasi2008/slides/discussions/PASI_PSE_Biopanel.pdf.
  160. Digitalist (2018). Circular economy: Reshaping the industrial ecosystem [Online]. Available at: https://www.digitalistmag.com/digital-supply-networks/2018/06/04/circular-economy-reshaping-the-industrial-ecosystem-06170272.
  161. Doble, M., Kruthiventi, A.K. and Gaikar, V.G. (2004). Bio-transformations and Bioprocesses. CRC Press, New York.
  162. Dobrzanski, L.A. (2006). Significance of materials science for the future development of societies. Journal of Materials Processing Technology, 175, 133–148.
  163. DOD – Department of Defense (2015). Process intensification – Chemical sector focus; technology assessment [Online]. Available at: http://energy.gov/sites/prod/files/2015/02/f19/QTR%20Ch8%20-%20Process%20Intensification%20TA%20Feb-13-2015.pdf.
  164. Doney, R. (2016). The Advances in Protein Chemistry and Structural Biology Series is an Essential Resource for Protein Chemists. Elsevier, New York.
  165. Donnadieu, G. and Karsky, M. (2002). La systémique ; penser et agir dans la complexité. Liaisons, Paris.
  166. Doran, P.M. (2012). Bioprocess Engineering Principles. Academic Press, Waltham.
  167. Dougherty, D. (1992). Interpretive barriers to successful product innovation in large firms. Organization Science, 3, 179–202.
  168. Downey, G.L., Lucena, J.C., Moskal, B.M., Parkhurst, R., Bigley, T., Hays, C., Jesiek, B.K., Kelly, L., Miller, J., Ruff, S., Lehr, J.L. and Nichols-Belo, A. (2006). The globally competent engineer: Working effectively with people who define problems differently. Journal of Engineering Education, 95, 107–122.
  169. Dragone, V., Kitson, P.J., Rosnes, M.H., Sans, V. and Cronin, L. (2015). Configurable 3D printed milli-fluidic and microfluidic ‘lab-onchip’ reaction-ware devices [Online]. Available at: http://www.cmac.ac.uk/files/media/Vincenze_Dragone.pdf.
  170. du Plessis, A., Broeckhoven, C., Yadroitsava, I. and Yadroitsev, I. (2019). Beautiful and functional: A review of bio-mimetic design in additive manufacturing. Additive Manufacturing, 27, 408–427.
  171. Dufour, A. (2016). Thermochemical Conversion of Biomass for the Production of Energy and Chemicals. ISTE Ltd, London and Wiley, New York.
  172. Durand, J.P. (2009). Le facteur h ou le comble de la paresse intellectuelle [Online]. Available at: http://histoireuniversites.blog.lemonde.fr/2009/06/22/paresse-intellectuelle/nb.
  173. Durand, H. (2012). Étude sur la contribution du biomimétisme à la transition vers une économie verte en France : état des lieux, potentiel, leviers. In Temis, Larrieu, C. and Hubert, C. (eds). 72, 160, Paris [Online]. Available at: http://www.developpement-durable.gouv.fr/IMG/pdf/ED72.pdf.
  174. Dussutour, A. (2017). Tout ce que vous avez voulu savoir sur le BLOB sans jamais oser le demander. J’ai Lu, Paris.
  175. Dyson, F. (2011). Portrait du scientifique en rebelled. Actes Sud, Paris.
  176. Earls, A.R. (2018). AI in manufacturing beneficial, but adoption slow [Online]. Available at: https://searchenterpriseai.techtarget.com/feature/AI-in-manufacturing-beneficial-but-adoption-slow.
  177. EC – European Commission (2019). Document de réflexion – vers une Europe durable à l’horizon 2030 [Online]. Available at: https://ec.europa.eu/commission/sites/beta-political/files/rp_sustainable_europe_fr_web.pdf.
  178. Einstein, A. (2006). The World As I See It. Citadel Press, Kensington.
  179. EIPRM – European Innovation Partnership on Raw Materials (2018). Raw materials scoreboard 2018 [Online]. Available at: https://publications.europa.eu/portal2012-portlet/html/downloadHandler.jsp?identifier=117c8d9b-e3d3-11e8-b690-01aa75ed71a1&format=pdf&language=en&productionSystem=cellar&part=.
  180. Elsevier and Ipsos MORI (2019). Research futures – Drivers and scenarios for the next decade [Online]. Available at: https://www.elsevier.com/__data/assets/pdf_file/0011/847955/Research_Futures_full_report_Feb2019.pdf.
  181. EMF – Ellen McArtur Foundation (2019). Artificial Intelligence and the Circular Economy – AI as a Tool to accelerate the Transition [Online]. Available at: https://www.ellenmacarthurfoundation.org/assets/downloads/Artificial-intelligence-and-the-circular-economy.pdf.
  182. Énergie Environnement (2019). Quelle trajectoire pour atteindre un mix électrique entièrement renouvelable en 2050 ? [Online]. Available at: http://www.energie.sia-partners.com/20190116/quelle-trajectoire-pour-atteindre-un-mix-electrique-entierement-renouvelable-en-2050-cycle.
  183. Ernoult, M. (2018). Métaux rares : un véhicule électrique génère presque autant de carbone qu’un diesel [Online]. Available at: http://www.liberation.fr/planete/2018/02/01/metaux-rares-un-vehicule-electrique-genere-presque-autant-de-carbone-qu-un-diesel_1625375.
  184. Esrafilzadeh, D., Zavabeti, A., Jalili, R., Atkin, P., Choi, J., Carey, B.J., Brkljača, R., O’Mullane, A.P., Dickey, M.D., Officer, D.L., MacFarlane, D.R., Daeneke, T. and Kalantar-Zadeh, K. (2019). Room temperature CO2 reduction to solid carbon species on liquid metals featuring atomically thin ceria interfaces. Nature Communications, 10, 865 [Online]. Available at: https://www.nature.com/articles/s41467-019-08824-8.
  185. ETC – Energy Transitions Commission (2018). Mission Possible: Reaching net-zero carbon emissions from harder-to-abate sectors by mid-century [Online]. Available at: http://www.energy-transitions.org/sites/default/files/ETC_MissionPossible_ReportSummary_English.pdf.
  186. EU (2012). Que sont les sources d’énergie renouvelable ? [Online]. Available at: http://www.2020energy.eu/sites/default/files/pdf/sources_d_energie_renouvelable.pdf.
  187. EU (2018a). Towards a circular economy [Online]. Available at: https://ec.europa.eu/commission/priorities/jobs-growth-and-investment/towards-circular-economy_fr.
  188. EU (2018b). Report on critical raw materials and the circular economy [Online]. Available at: https://ec.europa.eu/docsroom/documents/27327.
  189. EU – European Union (2005). Charte européenne du chercheur [Online]. Available at: http://ec.europa.eu/eracareers/pdf/eur_21620_en-fr.pdf.
  190. EU (2019). A sustainable pathway for the European energy transition [Online]. Available at: https://www.fch.europa.eu/sites/default/files/Hydrogen%20Roadmap%20Europe_Report.pdf.
  191. Eurofound (2019). The future of manufacturing in Europe [Online]. Available at: https://www.eurofound.europa.eu/sites/default/files/ef_publication/field_ef_document/fomeef18002en.pdf.
  192. European Commission (2019). Implementation of the Circular Economy Action Plan [Online]. Available at: https://ec.europa.eu/environment/circular-economy/pdf/report_implementation_circular_economy_action_plan.pdf.
  193. Eurostat (2019). L’économie circulaire dans l’UE. Record pour les taux de recyclage et l’utilisation de matériaux recyclés dans l’UE. Le taux de recyclage des emballages plastiques a presque doublé depuis 2005 [Online]. Available at: https://ec.europa.eu/eurostat/documents/2995521/9629304/8-04032019-BP-FR.pdf/.
  194. Eychenne, F. (2012). Fab lab. L’avant-garde de la nouvelle révolution industrielle. FYP, Limoges.
  195. Falk, L. (2015). Principes et applications de l’intensification en génie des procédés [Online]. Available at: http://gpip.cnam.fr/co/mardi20mars2013.html.
  196. Falk, L., de Bellefon, C., Gourdon, C. and Serra, C. (2010). Intensification des procédés. Actualité Chimique, 338–339, 101–111.
  197. Farrugia, D., Threadgold, S. and Coffey, J. (2018). Young subjectivities and affective labor in the service economy. Journal of Youth Studies, 21, 272–287.
  198. Fayemi, P.E. (2016). Innovation par la conception bio-inspirée : proposition d’un modèle structurant les méthodes biomimétiques et formalisation d’un outil de transfert de connaissances PhD thesis, ENSAM/ParisTech, Paris [Online]. Available at: https://pastel.archives-ouvertes.fr/tel-01531185/file/FAYEMI.pdf.
  199. Feenberg, A. (2010). Repenser la technique. La Découverte, Paris [Online].
  200. Ferey, G. (2013). L’illettrisme en chimie dans une société en pleine évolution. In Partager la science ; l’illettrisme scientifique en question, Bourguignon, J.-P., Chevallier-Le Guyader, M.-F., Cho., S.-K., Delacote, G., De Vries, M.J., Férey, G., Ferrini Mundy, J., Foucart, S., Girel, M., Hotyat, M., Houdé, O., Issola, R., Klein, E., Krankel, R.A., Le Guyader, H., Léna, P., Lussault, M., Matterson, C., Miraton, D., Monteil, J.-M., Natkin, S. and Wismann, H. (eds). Actes Sud/IHEST, Paris, 145–154.
  201. Fernandes, A.C., Gernaey, K.V. and Krühne, U. (2018). Connecting worlds – A view on microfluidics for a wider application. Biotechnology Advances, 36, 1341–1366.
  202. Feynman, R.P. (2000). Vous voulez rire Monsieur Feynman ? Odile Jacob, Paris.
  203. Fiksel, J. (2003). Designing resilient, sustainable systems. Environmental Science & Technology, 37, 5330–5339.
  204. Firestein, S. (2012). Ignorance. How it Drives Science. Oxford University Press, Oxford.
  205. Fitreman, J. (2004). États généraux de la recherche 2004 [Online]. Available at: http://cip-etats-generaux.apinc.org/article.php3?id_article=475.
  206. Fleck, L. (2012). Genesis and Development of a Scientific Fact. University of Chicago Press, Chicago.
  207. Fleiter, T. (2019). Fraunhofer – Industrial Innovation: Pathways to deep decarbonisation of Industry – Part 1: Technology Analysis – Part 2: Scenario analysis and pathways to deep decarbonisation [Online]. Available at: https://www.isi.fraunhofer.de/en/competence-center/energietechnologien-energiesysteme/projekte/pathways.html.
  208. Florent, M. (2013). Stratégie d’intensification des procédés. PhD thesis, University of Lorraine, Nancy.
  209. Foo, D.C.Y. and Chong, S. (2017). Effective teaching for process simulation. IChemE Education – Special Interest Group Newsletter, 62, 4.
  210. Foot, D. (1996). Boom, Bust and Echo. Stoddart, Toronto.
  211. Foot, D. (2005). Le marché du travail entre le boom et l’écho. Bien Vieillir, 11, 1–4.
  212. Foray, D. (1992). Technologie et richesse des nations. Economica, Paris.
  213. Foray, D. (2009). Introduction. In Économie de la connaissance, 3–8 [Online]. Available at: https://www.cairn.info/l-economie-de-la-connaissance--9782707156877-page-3.htm.
  214. Forbes (2018). Intelligence Artificielle : 51 prévisions pour 2018 [Online]. Available at: https://www.forbes.fr/technologie/intelligence-artificielle-51-previsions-pour-2018/5/.
  215. Fortuna, C. (2019). The top 16 largest consumer goods companies: A carbon reduction report card [Online]. Available at: https://cleantechnica.com/2019/04/02/the-top-16-largest-consumer-goods-companies-a-carbon-reduction-report-card/?utm_source=CleanTechnica+News&utm_campaign=46aaf7493d-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-46aaf7493d-331991893.
  216. Fossey, J. (2004). La recherche française va très bien – et pourquoi nos chercheurs s’exilentils aux États-Unis. L’Archipel, Paris.
  217. Fouet, M. (2016). Micro-fluidique 3D et actionneurs magnétiques. De leur intégration à la préparation d’échantillons biologiques. PhD thesis, University of Toulouse, Toulouse.
  218. France Stratégie (2018). Contribution à la feuille de route Économie circulaire – l’économie circulaire, une voie d’avenir pour la protection de l’environnement [Online]. Available at: http://www.strategie.gouv.fr/sites/strategie.gouv.fr/files/atoms/files/2018-02-05-_economie-circulaire-avis-ok.pdf.
  219. Frezza, S., Nordquest, D.A. and Moodey, R. (2013). Knowledge-generation epistemology and the foundations of engineering. In IEEE Frontiers in Education Conference. IEEE, 818–824.
  220. Furlan, F.F., Costa, C.B.B., Secchi, A.R., Woodley, J.M. and Giordano, R.C. (2016). Retro-techno-economic analysis: Using (bio) process systems engineering tools to attain process target values. Industrial & Engineering Chemistry Research, 55, 9865–9872.
  221. Futura-Sciences (2014). Quels sont les cinq types d’énergies renouvelables ? [Online]. Available at: https://www.futura-sciences.com/planete/questions-reponses/energie-renouvelable-sont-cinq-types-energies-renouvelables-4134/.
  222. Ganascia, J.G. (2017). Le mythe de la singularité : faut-il craindre l’intelligence artificielle ? Le Seuil, Paris.
  223. Garcia-Serna, J., Pérez-Barrigón, L. and Cocero, M.J. (2007). New trends for design towards sustainability in chemical engineering: Green engineering. Chemical Engineering Journal, 133, 7–30.
  224. Gartner (2017). Gartner identifies three megatrends that will drive digital business into the next decade [Online]. Available at: https://www.gartner.com/en/newsroom/press-releases/2017-08-15-gartner-identifies-three-megatrends-that-will-drive-digital-business-into-the-next-decade.
  225. Gates, B. (2019). How we’ll invent the future [Online]. Available at: https://www.technologyreview.com/lists/technologies/2019/.
  226. Gaudin, T. (1978). L’écoute des silences. 10/18, Paris.
  227. GCII – Global Cleantech Innovation Index (2017). The Global Cleantech Innovation Index 2017 – Which countries look set to produce the next generation of start-ups? [Online]. Available at: http://awsassets.panda.org/downloads/global_cleatech_innovation_index_2017_final_web.pdf.
  228. GDC – Grands défis Canada (2010). L’innovation intégrée [Online]. Available at: https://www.grandchallenges.ca/fr-ca/occasions-de-financement/innovation-integree/.
  229. GdR – Groupement de recherche CNRS (2016) Nano et micro-fluidique [Online]. Available at: http://www.gdrmicrofluidique.com/.
  230. Geng, Y., Sarkis, J. and Bleischwitz, R. (2019). How to globalize the circular economy. Nature, 565, 153–155.
  231. Ghosh, P. (2006). How chemical engineering will drive the 21st Century? [Online]. Available at: http://web.mit.edu/psgleadership/pdf/1_required_reading/How%20Chemical%20Engineering%20will%20Drive%20the21st%20Century%20Woburn.pdf.
  232. Gille, B. (1978). Histoire des techniques. Gallimard, Paris.
  233. Gillespie, T. (2014). The relevance of algorithms. In Media Technologies: Essays on Communication, Materiality, and Society, Gillespie, T., Boczkowski, P.J. and Foot, K.A. (eds). MIT Press, Cambridge, 167–193.
  234. Girard, R. (1982). Le bouc émissaire. Grasset, Paris.
  235. Girel, M. (2013a). Agnotologie : mode d’emploi. Critique, 12, 964–977.
  236. Girel, M. (2013b). Le doute à l’égard des sciences : l’ignorance produite et instrumentalisée. In Partager la science ; l’illettrisme scientifique en question, Bourguignon, J.-P., Chevallier-Le Guyader, M.-F., Cho., S.-K., Delacote, G., De Vries, M.J., Férey, G., Ferrini Mundy, J., Foucart, S., Girel, M., Hotyat, M., Houdé, O., Issola, R., Klein, E., Krankel, R.A., Le Guyader, H., Léna, P., Lussault, M., Matterson, C., Miraton, D., Monteil, J.-M., Natkin, S. and Wismann, H. (eds). Actes Sud/IHEST, Paris, 45–66.
  237. Girel, M. (2017). Science et territoire de l’ignorance. Éditions Quae, Versailles.
  238. Gleick, J. (2008). La théorie du chaos. Champs Sciences, Paris.
  239. Godet, M. (2001). De la rigueur pour une indiscipline intellectuelle. In Prospective stratégique d’entreprise, Lesourne, J. and Stoffaës, S. (eds). Dunod, Paris, 101–131.
  240. Godet, M. (2003). Le choc du futur. Odile Jacob, Paris.
  241. Godfray, H.C.J., Stephens, A.E.A., Jepson, P.D., Jobling, S., Johnson, A.C., Matthiessen, P., Sumpter, J.P., Tyler, C.R. and McLean, A.R. (2019). A restatement of the natural science evidence base on the effects of endocrine disrupting chemicals on wildlife [Online]. Available at: http://dx.doi.org/10.1098/rspb.2018.2416.
  242. Gomez, E. (2018). Feuille de route de l’économie circulaire : amorce réagit à la synthèse des ateliers et formule ses propositions [Online]. Available at: http://www.environnement-magazine.fr/territoires/article/2018/02/02/117388/feuille-route-economie-circulaire-amorce-reagit-synthese-des-ateliers-formule-ses-propositions.php.
  243. Gonzalez, A. and Hervas, M. (2009). Real sample analysis on micro-fluidic devices. Talanta, 74, 342–357.
  244. Gosh, P.S. (2006). How chemical engineering will drive the 21st century? [Online]. Available at: http://web.mit.edu/psgleadership/pdf/1_required_reading/How%20Chemical%20Engineering%20will%20Drive%20the21st%20Century%20Woburn.pdf.
  245. Graetzel, M., Janssen, R.A.J., Mitzi, D.B. and Sargent, E.H. (2012). Materials interface engineering for solution-processed photovoltaics. Nature, 488, 304–312.
  246. Grand, A. (2016). Du rapport Laroque à la loi relative à l’adaptation de la société au vieillissement : cinquante-cinq ans de politique vieillesse en France. Vie sociale, 3(15), 13–25.
  247. Grangier, G. (1986). Pour une épistémologie du travail scientifique. In La philosophie des sciences aujourd’hui, Hamburger, J. (ed.). Gauthier-Villars, Paris, 111–122.
  248. Gras, A. (2003). Fragilité de la puissance : se libérer de l’emprise technologique. Fayard, Paris.
  249. Griffin, J.M. (2014). Smart Energy Policy: An Economist’s Rx for Balancing Cheap, Clean, and Secure Energy. Yale University Press, London.
  250. GRIP – Groupe de recherche et d’information sur la paix et la sécurité (2018). L’Afrique des minerais stratégiques – du détournement des richesses à la culture de la guerre [Online]. Available at: https://www.grip.org/sites/grip.org/files/RAPPORTS/2018/Rapport_2018-8.pdf.
  251. Grützner, T., Ziegenbalg, D. and Güttel, R. (2018). Process intensification – An unbroken trend in chemical engineering. Chemie Ingenieur Technik, 90, 1823–1831.
  252. Guan, J. and Liu, N. (2015). Invention profiles and uneven growth in the field of emerging nano-energy. Energy Policy, 76, 146–157.
  253. Guerassimoff, G. (2013). Smart Grids. Au-delà du concept, comment rendre les réseaux plus intelligents. Presses des Mines, Paris.
  254. Guérin, I., Bouquet, E. and Morvan-Roux, S. (2016). Chercher ensemble : les défis et les cahots de l’interdisciplinarité, des méthodes mixtes et des partenariats multiples [Online]. Available at: https://hal.archives-ouvertes.fr/ird-01569808/document.
  255. Guillemette, Y. and Turner, D. (2018). The long view: Scenarios for the World economy to 2060 [Online]. Available at: https://doi.org/10.1787/b4f4e03e-en.
  256. Guy, B. (2012). Éthique et épistémologie : convergence entre la démarche épistémologique (chercher le vrai) et la démarche éthique (chercher le bien) : point de vue des sciences de l’ingénieur [Online]. Available at: https://halshs.archives-ouvertes.fr/hal-00736247/document.
  257. Habermas, J. (1995). Théorie de l’agir communicationnel – rationalité de l’agir et rationalisation de la société, volume 1. Fayard, Paris.
  258. Haddou-Benderbal, H. (2018). Développement d’une nouvelle famille d’indicateurs de performance pour la conception d’un système manufacturier reconfigurable (RMS) : approches évolutionnaires multicritères. PhD thesis, University of Lorraine, Nancy.
  259. Hahn, K., Schmidt, T., Mielke, M. and Brück, R. (2009). Micro and nano product engineering using data management for silicon-based fabrication process development. Proceedings of the IEEE, July, 337–340.
  260. Hammacher, J., Fülle, A., Flaemig, J. and Saupe, J. (2008). Stress engineering and mechanical properties of SU-8-layers for mechanical applications. Microsystem Technologies Micro-and Nano-systems Information Storage and Processing Systems, 14, 1515–1523.
  261. Hanley, S. (2019). Belgian scientists announce new solar panel that makes hydrogen [Online]. Available at: https://cleantechnica.com/2019/03/03/belgian-scientists-announce-new-solar-panel-that-makes-hydrogen/?utm_source=CleanTechnica+News&utm_campaign=0f84ca68a5-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-0f84ca68a5-331991893.
  262. Harari, Y.N. (2015). Sapiens, une brève histoire de l’humanité. Albin Michel, Paris.
  263. He, Y., Yao, S., Hao, J., Wang, H., Zhu, L., Si, T., Sun, Y. and Lin, J. (2018). Synthesis of melamine-formaldehyde microcapsules containing oil-based fragrances via intermediate polyacrylate bridging layers. Chinese Journal of Chemical Engineering, 27, 2574–2580.
  264. Helms, M., Vattam, S.S. and Goel, A.K. (2009). Biologically inspired design: Process and products. Design studies, 30, 606–622.
  265. Hervé, C. (2018). Revisit of the notion of human being with current technological acquisitions. Ethics, Medicine and Public Health, 5, 1–2.
  266. Herwig, C. and Posch, A. (2013). Herausforderungen und Trends für zukünftige Bioprozesse. Pharmind, 75, 1688–1694.
  267. Hill, M. (2009). Chemical product engineering – The third paradigm. Computers and Chemical Engineering, 33, 947–953.
  268. Hoguin, S. (2018). Nouveaux matériaux : du bio-mimétisme à l’intelligence artificielle [Online]. Available at: https://www.techniques-ingenieur.fr/actualite/articles/nouveaux-materiaux-biomimetisme-intelligence-artificielle-52908/.
  269. Horckmans, M. (2016). Prospective en génie des procédés. ENSIC K&D Project, University of Lorraine, Nancy.
  270. Horváth, L. and Rudas, I.J. (2014). Systems engineering methods for multidisciplinary product definition [Online]. Available at: https://ieeexplore.ieee.org/document/6923604.
  271. HPC Today (2013). Micro-fluidique : des avancées décisives [Online]. Available at: http://www.hpctoday.fr/discover/microfluidique-des-avancees-decisives/.
  272. Huang, H. and Densmore, D. (2014). Integration of microfluidics into the synthetic biology design flow. Lab on a Chip, 14, 3459–3474.
  273. Huh, D., Torisawa, Y.S., Hamilton, G.A., Kim, H.J. and Ingber, D.E. (2012). Micro-engineered physiological biomimicry: Organs-on-Chips. Lab on a Chip, 12, 2156–64.
  274. Hwang, J., Jeong, Y., Park, J.M., Lee, K.H., Hong, J.W. and Choi, J. (2015). Bio-mimetics: Forecasting the future of science, engineering, and medicine. International Journal of Nanomedicine, 10, 5701–5713.
  275. Iansiti, M. (1998). Technology Integration: Making Critical Choice in a Dynamic World. Harvard Business School Press, Boston.
  276. IChemE (2012). Facing the future: Manchester workshop reviews challenges and opportunities for UK chemical engineering [Online]. Available at: http://www.icheme.org/media_centre/news/2012/international%20panel%20discusses%20future%20of%20chemical%20engineering.aspx#.VQRPhWdFB9A.
  277. IChemE (2014). Ten future careers of chemical engineering [Online]. Available at: https://ichemepresident.wordpress.com/2014/09/04/ten-future-careers-of-chemical-engineers-day-100/.
  278. IESF – Société des ingénieurs et scientifiques de France (2019). L’enquête nationale IESF : une enquête de référence [Online]. Available at: https://www.iesf.fr/752_p_50331/une-enquete-de-reference.html.
  279. IFRI – Institut français des relations internationales (2018a). Face au défi des métaux critiques, une approche stratégique du recyclage s’impose [Online]. Available at: https://www.ifri.org/sites/default/files/atoms/files/danino-perraud_metaux_critiques_recyclage_2018.pdf.
  280. IFRI – Institut français des relations internationales (2018b). Intelligence artificielle : vers une nouvelle révolution militaire ? [Online]. Available at: https://www.ifri.org/sites/default/files/atoms/files/fs84_noel.pdf.
  281. IHS Markit and Energy Futures Initiative (2019). Advancing the landscape of clean energy innovation [Online]. Available at: http://www.b-t.energy/wp-content/uploads/2019/02/Report_-Advancing-the-Landscape-of-Clean-Energy-Innovation_2019.pdf.
  282. IISD – International Institute for Sustainable Development (2019). Sustainability and second life: The case for cobalt and lithium recycling [Online]. Available at: https://www.iisd.org/sites/default/files/publications/sustainability-second-life-cobalt-lithium-recycling.pdf.
  283. IIT – Institut international technologie (2017). Génie des procédés [Online]. Available at: http://www.iit.com.tn/detail_dip/43.
  284. Ing (2019). Opportunity and disruption: How circular thinking could change US business models [Online]. Available at: https://www.ingwb.com/media/2692501/ing_us-circular-economy-survey-05-02-2019.pdf.
  285. INRIA (2019). Recherche reproductible : principes méthodologiques pour une science transparente [Online]. Available at: https://www.fun-mooc.fr/courses/course-v1:inria+41016+session02/about.
  286. INRS – Institut national de recherche et de sécurité (2006). Traitement des gaz dangereux captés sur les lieux de travail. INRS, Paris.
  287. INSEE – Institut national de la statistique et des études économiques (2017). Les entreprises en France. Insee Références, Paris, 130–131.
  288. INSEE – Institut national de la statistique et des études économiques (2019). Les consommations d’énergie dans l’industrie en 2017 – enquête annuelle sur les consommations d’énergie dans l’industrie (EACEI) – Insee Résultats [Online]. Available at: https://www.insee.fr/fr/statistiques/3705301?sommaire=3702794.
  289. Institut Pierre-Gilles De Gennes (2015). Comprendre la micro-fluidique [Online]. Available at: http://www.institut-pgg.fr/Comprendre-la-Microfluidique_65.html.
  290. Investir (2018). Quatre acteurs de la chimie verte en phase avancée [Online]. Available at: https://investir.lesechos.fr/dossiers/quatre-acteurs-de-la-chimie-verte-en-phase-avancee/quatre-acteurs-de-la-chimie-verte-en-phase-avancee-1787441.php.
  291. Ismail, A.A. and Bahnemann, D.W. (2014). Photochemical splitting of water for hydrogen production by photo-catalysis. Solar Energy Materials and Solar Cells, 128, 85–101.
  292. Jacobson, M.Z. and Delucchi, M.A. (2019). Why the green new deal cuts consumer energy costs & unemployment [Online]. Available at: https://cleantechnica.com/2019/03/09/why-the-green-new-deal-cuts-consumer-energy-costs-unemployment/?utm_source=CleanTechnica+News&utm_campaign=dc631f1bb7-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-dc631f1bb7-331991893.
  293. Janneret, J. (1994). Territorialisation des savoirs, savoirs territorializes ? Politiques et Management Public, 12–2, 53–74.
  294. Janssens, V. (2018). Circular economy? Not without the internal market! [Online]. Available at: https://www.euractiv.com/section/circular-economy/opinion/circular-economy-not-without-the-internal-market/.
  295. Jeger, F. and Peraldi, O. (2018). Appétence et désaffection pour les études scientifiques et techniques en France : où en sommes-nous ? [Online]. Available at: https://www.opinion-internationale.com/wp-content/uploads/2019/02/rapport1.cc.etudesscientifiques.final_.a5.2.pdf.
  296. Jensen, K.L. (2001). Micro-reaction engineering – Is small better? Chemical Engineering Science, 56, 293–303.
  297. Johns, W.R. (1996). Formal methods for designing clean processes. Clean Production, 183–198.
  298. Johnson-Chavarria, E.M., Agrawal, U., Tanyeri, M., Kuhlman, T.E. and Schroeder, C.M. (2014). Automated single cell microbioreactor for monitoring intracellular dynamics and cell growth in free solution. Lab on a Chip, 14, 1–10.
  299. Jolliet, O., Saadé, M., Crettaz, P. and Shaked, S. (2005). Analyse du cycle de vie : comprendre et réaliser un écobilan. Presses Polytechniques et Universitaires Romandes, Lausanne.
  300. JRC – Joint Research Centre (2018). Deployment scenarios for low carbon energy technologies [Online]. Available at: http://publications.jrc.ec.europa.eu/repository/bitstream/JRC112915/jrc112915_lceo_d4.7.pdf.
  301. JRC – Joint Research Centre (2019). Sankey diagrams of woody biomass flows in the EU-28 [Online]. Available at: http://publications.jrc.ec.europa.eu/repository/bitstream/JRC115777/jrc_sankey_2019_online.pdf.
  302. Kamps, T., Gralow, M., Schlick, G. and Reinhart, G. (2017). Systematic biomimetic part design for additive manufacturing. Procedia CIRP, 65, 259–266.
  303. Keynes, J.M. (1931). Essais de persuasion [Online]. Available at: http://classiques.uqac.ca/classiques/keynes_john_maynard/essais_de_persuasion/essais_persuasion.html.
  304. Knack, A. (2017). Open science: The citizen’s role in and contribution to research [Online]. Available at: https://www.rand.org/pubs/conf_proceedings/CF375.html.
  305. Koch, C. and Wellers, D. (2018). Circular economy: Reshaping the industrial ecosystem [Online]. Available at: https://www.digitalistmag.com/digital-supply-networks/2018/06/04/circular-economy-reshaping-the-industrial-ecosystem-06170272.
  306. Kolomijecs, P.N. (2018). “Silver economics”: A new approach to the problem of aging. Journal of Economic Regulation, 9, 89–101.
  307. Kourilsky, P. (2014). Le jeu du hasard et de la complexité ; la nouvelle science de l’immunologie. Odile Jacob, Paris.
  308. Koytsoumpa, E.J., Bergins, C. and Kakaras, E. (2018). The CO2 economy: Review of CO2 capture and reuse technologies. The Journal of Supercritical Fluids, 132, 3–16.
  309. KPMG (2010). The future of the US chemical industry. In L’évolution des cultures numériques. De la mutation du lien social à l’organisation du travail, Licoppe, C. (ed.). FYP, Paris.
  310. Kraft, M. and Mosbach, S. (2010). The future of computational modelling in reaction engineering. Philosophical Transactions of the Royal Society, 368, 3633–3644.
  311. Kuhn, T. (1983). La structure des révolutions scientifiques. Flammarion, Paris.
  312. Kulmuni, K. (2019). Les ministres européens ont discuté de la question de la recherche et de l’innovation comme vecteurs d’une croissance durable [Online]. Available at: https://eu2019.fi/fr/artikkeli/-/asset_publisher/suomi-kutsuu-eu-n-kilpailukykyministerit-keskustelemaan-kestavasta-kasvus-2.
  313. Lahtinen, V. and Stenvall, A. (2017). Towards a unified framework for decomposability of processes. Synthese, 194, 4411–4427.
  314. Lambert, C. (2005). La société de la peur. Plon, Paris.
  315. Lapicque, F., Storck, A. and Wragg, A.A. (1994). Electrochemical Engineering and Energy. Springer Science, New York.
  316. Lapicque, F., Belhadj, M., Bonnet, C., Pauchet, J. and Thomas, Y. (2016). A critical review on gas diffusion micro and macro-porous layers degradations for improved membrane fuel cell durability. Journal of Power Sources, 336, 40–53.
  317. Larivée, S. (2017). Regards croisés sur l’analphabétisme scientifique et le processus d’évaluation par les pairs [Online]. Available at: https://www.erudit.org/fr/revues/psyedu/2017-v46-n1-psyedu03050/1039679ar/.
  318. Latour, B. (2001). Le métier de chercheur, regard d’un anthropologue. INRA, Paris.
  319. Lau, D., Jian, W., Yu, Z. and Hui, D. (2018). Nano-engineering of construction materials using molecular dynamics simulations: Prospects and challenges. Composites Part B: Engineering, 143, 282–291.
  320. Laurent, A. (2011). Sécurité des procédés chimiques – connaissances et méthodes d’analyse des risques. Lavoisier, Paris.
  321. Le Hir, P. (2004). La société en mal de science. Le Monde, 22 December.
  322. Le Méhauté, A. and Raynal, S. (2009). Kairos Management : nouveaux outils pour le management des opportunités et un développement durable. La Revue des Sciences de Gestion, 5, 97–106.
  323. Le Méhauté, A. et al. (2007). L’acteur du projet pour une économie de la connaissance – l’ingénieur ‘Entropologue’. La Revue des Sciences de Gestion, 4, 65–75.
  324. Le Moigne, J.L. (2001). Interdisciplinarité ; comprendre pour faire ? [Online]. La lettre chemin faisant, 39. Available at: http://www.intelligence-complexite.org/fileadmin/docs/39.pdf.
  325. Lecun, Y. (2017). Apprendre aux machines à penser : un défi majeur pour l’économie ? Un progrès pour l’humanité ? [Online]. Défis, 8, 9–19. Available at: http://inhesj.fr/sites/default/files/inhesj_files/publications/pdf/defis8.pdf.
  326. Legrand, P. (2001). Des objets environnementaux à l’INRA et en général [Online]. Available at: http://www.intelligence-complexite.org/fileadmin/docs/39.pdf.
  327. Legrand, J. (2016). Photo-bio-reaction Engineering. Elsevier, New York.
  328. Legrand, P. (2018). Produire autrement – proposition de la SFGP à la prospective du CS de l’INSIS. Outlook report, INSIS-CNRS, Paris.
  329. Legrand, P. and André, J.-C. (2015). Pour une approche ‘Safer by design’ en nano-médecine. OMNT micro et nanotechnologies : avancées, tendances et perspectives, 228–229.
  330. Lenay, C., Salembier, P., Lamard, P., Lequin, Y.-C. and Sauvee, L. (2014). Pour une recherche technologique en sciences humaines et sociales. SHS Web of Conferences, 13(05001).
  331. Leonelli, S. (2007). What is in a model? Combining theoretical and material models to develop intelligible theories. In Modeling Biology. Structure Behaviors Evolution, Laubichler, M.D. and Müller, G.B. (eds). MIT Press, Cambridge, 15–35.
  332. Letcher, T.M. (2008). Energy ‘Improved, Sustainable, and Clean Option for our Planet’. Elsevier, London.
  333. Levasseur, A. (2011). Développement d’une méthode d’analyse du cycle de vie dynamique pour l’évaluation des impacts sur le réchauffement climatique [Online]. PhD thesis, École Polytechnique de Montréal, Montreal. Available at: https://publications.polymtl.ca/706/1/2011_AnnieLevasseur.pdf.
  334. Liu, F., Li, X., Yu, F. and Ping, E. (2014). Method for product integrated innovation based on functional combination and TRIZ. Proceedings of the 2014 IEEE ICMIT, 268–272.
  335. LNE – Le nouvel économiste (2017). Le coût de l’innovation augmente et la productivité scientifique s’en ressent. Mais les connaissances actuellement disponibles sont loin d’avoir été exploitées [Online]. Available at: https://www.lenouveleconomiste.fr/cout-de-linnovation-augmente-productivite-scientifique-sen-ressent-61527/.
  336. Lopez, E., Rousseau, M. and Bourrat, X. (2008). La Nacre, les bio-minéralisations et la pharmacopée [Online]. Available at: https://hal-insu.archives-ouvertes.fr/insu-00414128/document.
  337. Lourtioz, J.-M., Lahmani, M., Dupas-Haeberlin, C. and Hesto, P. (2016). Nanoscience and Nanotechnology: Evolution and Revolution? Springer, Heidelberg.
  338. Lower, S. (2013). Energy, heat and work; an introduction to chemical energetics and thermodynamics 1 [Online]. Available at: http://www.chem1.com/acad/webtext/energetics/CE-1.html.
  339. LRGP – Laboratoire réactions et génie des procédés (2019a). Bioprocédés – biomolécules [Online]. Available at: http://lrgp-nancy.cnrs.fr/spip.php?rubrique74.
  340. LRGP – Laboratoire réactions et génie des procédés (2019b). Produits – matériaux [Online]. Available at: http://lrgp-nancy.cnrs.fr/spip.php?rubrique46.
  341. Mahajan, S. (2014). Mastering Complexity. MIT Press, Boston.
  342. Mahé, A. (2002). La communication scientifique en (r)évolution. PhD thesis. Université Claude Bernard, Lyon.
  343. Maillard, S. (2018). Disruption – préparez-vous à changer le monde. Dunod, Paris.
  344. Maldonado, C.E. and Gómez-Cruz, N.A. (2012). The complexification of engineering. Complexity, 17, 8–15.
  345. Mao, Z. and Yang, C. (2016). Computational chemical engineering – Towards thorough understanding and precise application. Chinese Journal of Chemical Engineering, 24, 945–951.
  346. Marion, F. (2018). 9/10 : ce n’est pas une bonne note, c’est le nombre de déchets plastiques non recyclés dans le monde [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7814:9-10-ce-n-est-pas-une-bonne-note-c-est-le-nombre-de-dechets-plastiques-non-recycles-dans-le-monde&catid=174:climat-ressources&Itemid=827.
  347. Marion, F. (2019). Métaux stratégiques : comment s’affranchir de notre dépendance ? [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=8348:metaux-strategiques-comment-s-affranchir-de-notre-dependance&catid=177:transition-energetique&Itemid=826.
  348. Martin, J.M. (2002). La consommation des sources d’énergie : utilisations finales, efficacité et productivité [Online]. Available at: http://sfp.in2p3.fr/Debat/debat_energie/websfp/martin.htm.
  349. Martin, S. (2019). L’Ademe pointe un risque de désengagement des français sur l’écologie [Online]. Available at: https://www.la-croix.com/Sciences-et-ethique/Environnement/LAdeme-pointe-risque-desengagement-Francais-lecologie-2019-03-30-1201012347.
  350. Matlosz, M. and Falk, L. (2009). Process intensification. In Micro-chemical Engineering in Practice, Dietrich, T.R. (ed.). Wiley, New York.
  351. Mazumdar, S. (2001). Composites Manufacturing: Materials, Product, and Process Engineering. CRC Press, New York.
  352. Mazzucato, M. (2018). Mission-oriented research & innovation in the European Union – A problem-solving approach to fuel innovation-led growth [Online]. Available at: https://publications.europa.eu/portal2012-portlet/html/downloadHandler.jsp?identifier=5b2811d1-16be-11e8-9253-01aa75ed71a1&format=pdf&language=en&productionSystem=cellar&part=.
  353. McCall, J. (2017). Clean energy manufacturing analysis center: Systems analysis of manufacturing supply chains [Online]. Available at: https://www.manufacturingcleanenergy.org/blog.html.
  354. Média-Terre (2018). Pour une réutilisation créative des matières résiduelles [Online]. Available at: https://www.mediaterre.org/actu,20180829183620,15.html.
  355. Medisite (2005). Problème préoccupant : l’antibiorésistance [Online]. Available at: https://www.medisite.fr/medicaments-et-risques-sante-probleme-preoccupant-l-antibioresistance.186.70.html.
  356. Mélanie, R. (2018). Le marché mondial de la fabrication additive représente 9,3 milliards de dollars en 2018 [Online]. Available at: https://www.3dnatives.com/marche-fabrication-additive-171220183/.
  357. Mélanie, R. (2019). GE research imprime en 3D un échangeur de chaleur pour une conversion d’énergie plus efficace [Online]. Available at: https://www.3dnatives.com/ge-research-echangeur-3d-170420193/.
  358. Mellouk, H. (2007). Extraction des volatils à partir du bois par détente instantanée contrôlée : valorisation industrielle des extraits et des résidus solides. PhD thesis, Université de La Rochelle, La Rochelle.
  359. Meloni, S., Moehl, T., Tress, W., Franckevičius, M., Saliba, M., Lee., Y.H., Gao, P., Nazeeruddin, M.K., Zakeeruddin, S.M., Rothlisberger, U. and Graetzel, M. (2016). Ionic polarization-induced current–voltage hysteresis in CH3NH3PbX3 perovskite solar cells. Nature Communications, 7(10334).
  360. Mendes da Luz, L., Carlos de Francisco, A., Piekarski, C.M. and Salvador, R. (2018). Integrating life cycle assessment in the product development process: A methodological approach. Journal of Cleaner Production, 193, 28–42.
  361. Mercedes-Benz (2014). The research vehicles of Mercedes-Benz [Online]. Available at: http://www2.mercedes-benz.co.uk/content/unitedkingdom/mpc/mpc_unitedkingdom_website/en/home_mpc/passengercars/home/passenger_cars_world/innovation_new/concept_cars.0008.html.
  362. Merle, A. (2010). Comprendre et gérer un programme de customisation de masse. Décisions Marketing, 59, 39–48.
  363. Merleau-Ponty, M., Johnson, G.A. and Smith, M.B. (1993). The Merleau-Ponty Aesthetics Reader: Philosophy and Painting. Northwestern University Press, USA.
  364. MERN – Ministry of Education and Research of Norway (2017). Quality culture in higher education [Online]. Available at: https://www.regjeringen.no/contentassets/aee30e4b7d3241d5bd89db69fe38f7ba/en-gb/pdfs/stm201620170016000engpdfs.pdf.
  365. Micheaud, D. (2011). L’analyse du cycle de vie. Master Gestion et transformation de l’énergie électrique. Master’s thesis, Université Blaise Pascal, Clermont-Ferrand.
  366. Microsoft (2019). How AI can enable a sustainable future [Online]. Available at: https://www.pwc.co.uk/sustainability-climate-change/assets/pdf/how-ai-can-enable-a-sustainable-future.pdf.
  367. Mihelcic, J.R., Crittenden, J.C., Small, M.J., Shonnard, D.R., Hokanson, D.R., Zhang, Q., Chen, H., Sorby, S.A., James, V.U., Sutherland, J.W. and Schnoor, J.L. (2003). Sustainability science and engineering: The emergence of a new meta-discipline. Environmental Science & Technology, 37, 5314–5324.
  368. Miller, R. and Côté, M. (2010). L’innovation : le paradoxe européen. Impertinences 2010, 110–124 [Online]. Available at: http://www.laprospective.fr/dyn/francais/cercle_des_entrepreneurs/grand_prix_2009/imp2010millercote.pdf.
  369. Ministry of Education and Research (2017). Quality culture in higher education. Report [Online]. Available at: https://www.regjeringen.no/contentassets/aee30e4b7d3241d5bd89db69fe38f7ba/en-gb/pdfs/stm201620170016000engpdfs.pdf.
  370. Mizeret, J. (2015). Les technologies de fabrication additive pour la créativité, le prototypage, la fabrication [Online]. Available at: http://www.swissmem.ch/fr/presentations-fabrication-additive.html.
  371. Mohr, A. and Raman, S. (2013). Lessons from first generation biofuels and implications for the sustainability appraisal of second generation biofuels. Energy Policy, 63, 114–122.
  372. Morange, M. (1994). Les effets de mode en recherche. In Organisation de la recherche et conformisme scientifique, Esterlé, A. and Schaeffer, L. (eds). PUF, Paris, 263–273.
  373. Morawietz, M. and Gotpagar, J. (2013). 2013 chemical industry perspective [Online]. Available at: http://www.strategyand.pwc.com/global/home/what-we-think/industry-perspectives/display/2013-chemicals-industry-perspective.
  374. Morgan, S. (2018). L’économie circulaire pourrait permettre de neutraliser les émissions de CO2 [Online]. Available at: https://www.euractiv.fr/section/developpement-durable/news/circular-economy-vital-to-eus-quest-to-kill-emissions-study/?utm_source=EURACTIV&utm_campaign=54eba1ec21-RSS_EMAIL_FR_Planete&utm_medium=email&utm_term=0_c59e2fd7a9-54eba1ec21-115013267.
  375. Morin, E. (1990). Science avec conscience. Points. Fayard, Paris.
  376. Morton, T. (2015). Les ‘hyper-objets’, le super concept qui révolutionne la pensée écologique [Online]. Available at: https://www.lesinrocks.com/2015/11/21/arts/arts/les-hyperobjets-le-superconcept-qui-revolutionne-la-pensee-ecologique/.
  377. Mourtzis, D. (2016). Challenges and future perspectives for the life cycle of manufacturing networks in the mass customization era. Logistics Research, 9(2).
  378. Moutchouris, A. (2014). La dynamique de l’interdisciplinarité. In Modélisation et interdisciplinarité : six disciplines en quête d’épistémologie, Mathieu, N. and Schmid, A.F. (eds). Quae, Paris, 217–229.
  379. Mulliez, A. (2017). Ratez. Ratez encore. Mais ratez mieux [Online]. Available at: https://www.lesechos.fr/idees-debats/cercle/030487610681-ratez-ratez-encore-mais-ratez-mieux-2107062.php#iqpts4yGc1i3stdA.99.
  380. Nagel, J.K., Nagel, R.L., Stone, R.B. and McAdams, D.A. (2010). Function-based, biologically inspired concept generation. Artificial Intelligence for Engineering Design, Analysis and Manufacturing, 24, 521–535.
  381. Naik, S.N., Goud, V.V., Rout, P.K. and Dalai, A.K. (2010). Production of first and second generation biofuels: A comprehensive review. Renewable and Sustainable Energy Reviews, 14, 578–597.
  382. NAP – National Academies Press (2017). A new vision for center-based engineering research [Online]. Available at: http://www.nap.edu/24767.
  383. NAP – National Academies Press (2019a). Frontiers of materials research: A decadal survey [Online]. Available at: http://nap.edu/25244.
  384. NAP – National Academies Press (2019b). Negative emissions technologies and reliable sequestration: A research agenda [Online]. Available at: https://www.nap.edu/download/25259.
  385. NAP – National Academies Press (2019c). Environmental engineering for the 21st Century: Addressing grand challenges [Online]. Available at: https://www.nap.edu/download/25121.
  386. Narodoslawsky, M. (2013). Chemical engineering in a sustainable economy. Chemical Engineering Research and Design, 91, 2021–2028.
  387. NASCIO – National Association of State Chief Information Officers (2018). Ready for Prime Time? State Governments Tune in to Artificial Intelligence [Online]. Available at: https://www.nascio.org/Publications/ArtMID/485/ArticleID/681/Ready-for-Prime-Time-State-Governments-Tune-in-to-Artificial-Intelligence.
  388. NAS/RS – National Academy of Sciences/The Royal Society (2018). The Frontiers of machine Learning [Online]. Available at: https://www.nap.edu/download/25021?utm_source=NASEM+News+and+Publications&utm_campaign=27e4e710fb-EMAIL_CAMPAIGN_2018_02_12&utm_medium=email&utm_term=0_96101de015-27e4e710fb-104217021&goal=0_96101de015-27e4e710fb-104217021&mc_cid=27e4e710fb&mc_eid=8d8b10de0b.
  389. Nature (2014). Diversity: A nature and scientific American special issue [Online]. Available at: http://www.nature.com/news/diversity-1.15913.
  390. Nietzsche, F. (1989). La naissance de la tragédie. Gallimard, Paris.
  391. Noorman, H.J. and Heijnen, J.J. (2017). Biochemical engineering’s grand adventure. Chemical Engineering Science, 170, 677–693.
  392. Nora, D. (2015). Lettres à mes parents sur le monde de demain. Grasset, Paris.
  393. NRC – National Research Council (2014). Convergence: Facilitating Transdisciplinary Integration of Life Sciences, Physical Sciences, Engineering, and Beyond. The National Academies Press, Washington.
  394. NRC – National Research Council (2015). Enhancing the Effectiveness of Team Science. The National Academies Press, Washington.
  395. O’Connor, J.P., Punch, J., Jeffers, N. and Stafford, J. (2015). A comparison between the hydrodynamic characteristics of 3D printer polymer and etched silicon micro-channels. Micro-fluid. Nano-fluid, 19, 385–394.
  396. O’Neill, P.F., Ben Azouz, A., Vazquez, M. and Liu, J. (2014). Advances in three-dimensional rapid prototyping of microfluidic devices for biological applications. Bio-microfluidics, 16(052112).
  397. O’Sullivan, E. (2016). A review of international approaches to center-based, multidisciplinary engineering research [Online]. Available at: https://www.nae.edu/Projects/147474.aspx.
  398. OCDE (2019). Les grandes mutations qui transforment l’éducation [Online]. Available at: https://www.oecd-ilibrary.org/education/les-grandes-mutations-qui-transforment-l-education-2019_trends_edu-2019-fr.
  399. Ohno, K., Tachikawa, K. and Manz, A. (2008). Microfluidics: Applications for analytical purposes in chemistry and biochemistry. Electrophoresis, 29, 4443–4453.
  400. OIE – Observatoire de l’industrie électrique (2015). La consommation d’énergie dans l’industrie en France [Online]. Available at: http://observatoire-electricite.fr/IMG/pdf/oie.pdf.
  401. Ojo, A. and Thomas, K. (2011). Artificial photosynthesis: The solution to an energy problem. In Eleventh Annual Freshman Conference, Swanson School of Engineering. University of Pittsburgh, Pittsburgh.
  402. Olkiewicz, M., Caporgno, M.P., Font, J. and Legrand, J. (2015). A novel recovery process for lipids from microalgæ for biodiesel production using a hydrated phosphonium ionic liquid [Online]. Available at: https://www.researchgate.net/profile/Magdalena_Olkiewicz/publication/272101445_A_novel_recovery_process_for_lipids_from_microalgae_for_biodiesel_production_using_a_hydrated_phosphonium_ionic_liquid/links/5525028d0cf2caf11bfcf348.pdf.
  403. Oreskes, N. and Conway, E.M. (2012). Les marchands de doute. Le Pommier, Paris.
  404. Ortloff, D., Schmidt, T., Hahn, K., Bieniek, T., Janczyk, G. and Brück, R. (2014). MEMS Products Engineering: Handling the Diversity of an Emerging Technology: Best Practices for Cooperative Development. Springer Verlag, Berlin.
  405. OSTP – Office of Science and Technology Policy (2019). Emerging technologies to help aging Americans maintain their independence [Online]. Available at: https://www.whitehouse.gov/articles/emerging-technologies-help-aging-americans-maintain-independence/.
  406. Otto, H.E. and Mandorli, F. (2018). A framework for negative knowledge to support hybrid geometric modeling education for product engineering. Journal of Computational Design and Engineering, 5, 80–93 [Online]. Available at: https://read.oecd-ilibrary.org/education/les-grandes-mutations-qui-transforment-l-education-2019_trends_edu-2019-fr#page1.
  407. Pagoropoulos, A., Pigosso, D.C.A. and McAloone, T.C. (2017). The emergent role of digital technologies in the circular economy: A review. Procedia CIRP, 64, 19–24.
  408. Panja, P., Velasco, R., Pathak, M. and Deo, M. (2017). Application of artificial intelligence to forecast hydrocarbon production from shales. Petroleum, 4, 75–89 [Online]. Available at: https://doi.org/10.1016/j.petlm.2017.11.003.
  409. Paris, T. (2010). Manager la créativité. Pearson, Paris.
  410. Parkinson, G. (2015). The future of energy, explained in 70 seconds by NRG CEO [Online]. Available at: http://cleantechnica.com/2015/03/14/the-future-of-energy-explained-in-70-seconds-by-nrg-ceo/.
  411. Perri, P. (2017). Nanotechnologies : le XXIe siècle sera-t-il le siècle des ingénieurs ? [Online]. Available at: http://www.atlantico.fr/decryptage/nanotechnologies-21e-siecle-sera-t-siecle-ingenieurs-pascal-perri-nanotechnologies-science-economie-3053748.html#hwByOugxVQ0MLvL0.99.
  412. Perspectives économiques (2010). L’économie de fonctionnalité, qu’est-ce que c’est ? [Online]. Available at: https://www.alternatives-economiques.fr/leconomie-de-fonctionnalite-quest-cest/00041227.
  413. Petit, A. (2019). Qu’est-ce qu’un bon chercheur ? [Online]. Available at: https://www.Franceculture.fr/emissions/du-grain-a-moudre-dete/du-grain-a-moudre-dete-emission-du-jeudi-11-juillet-2019?utm_medium=Social&utm_source=Facebook#Echobox=1563098454.
  414. Piganiol, P. (2004). Le chercheur est-il apte à la recherche ? Le Banquet, 19, 4.
  415. Pillai, R.G. and Bezbaruah, A.N. (2017). Perceptions and attitude effects on nanotechnology acceptance: An exploratory framework. Journal of Nanoparticle Research, 19, 41.
  416. PIPAME – Pôle interministériel de prospective et d’anticipation des mutations économiques (2010). Mutations économiques dans le domaine de la chimie [Online]. Available at: https://archives.entreprises.gouv.fr/2012/www.industrie.gouv.fr/p3e/etudes/chimie/chimie_competences.pdf.
  417. PIPAME – Pôle interministériel de prospective et d’anticipation des mutations économiques (2019a). Intelligence artificielle – état de l’art et perspectives pour la France [Online]. Available at: https://www.entreprises.gouv.fr/files/files/directions_services/etudes-et-statistiques/prospective/Intelligence_artificielle/2019-02-intelligence-artificielle-etat-de-l-art-et-perspectives.pdf.
  418. PIPAME – Pôle interministériel de prospective et d’anticipation des mutations économiques (2019b). Industrie du futur – secteurs de la chimie et du papier-carton : amélioration des outils de production et apport du numérique [Online]. Available at: https://www.entreprises.gouv.fr/files/files/directions_services/etudes-et-statistiques/prospective/chimie/15-03-Chimie-Papier-Rapport-COMPLET.pdf.
  419. Pittet, D., Allegranzi, B., Storr, J. and Donaldson, L. (2006). ‘Clean care is safer care’: The Global Patient Safety Challenge 2005–2006. International Journal of Infectious Diseases, 10, 419–424.
  420. Poizot, P. and Dolhem, F. (2010). Clean energy new deal for a sustainable world: From non- CO2 generating energy sources to greener electrochemical storage devices. Energy & Environmental Science, 4(2003).
  421. Polytechnique Montréal (2015). Orientation and future in chemical engineering [Online]. Available at: http://www.polymtl.ca/gch/en/studies-program/graduate-studies/orientation-and-future-chemical-engineering.
  422. POST – Parliamentary Office of Science and Technology (2019). Limiting Global Warming to 1,5 °C. PostNote, 594 [Online]. Available at: http://researchbriefings.files.parliament.uk/documents/POST-PN-0594/POST-PN-0594.pdf.
  423. Poux, M., Cognet, P. and Gourdon, C. (2010). Génie des procédés durables. Dunod, Paris.
  424. Powell, J.B. (2017). Application of multiphase reaction engineering and process intensification to the challenges of sustainable future energy and chemicals. Chemical Engineering Science, 157, 15–25.
  425. Powell, W.W. and Snellman, K. (2004). The knowledge economy. Annual Review of Sociology, 30, 199–220.
  426. Proctor, R.N. (2011). Golden Holocaust. Origin of the Cigarette Catastrophe and the Case of Abolition. University of California Press, Berkeley.
  427. Pumera, M. (2019). Electrochemistry of graphene: New horizons for sensing and energy storage. The Chemical Record, 9, 211–223.
  428. Purohit, H.J., Kalia, V.C., Vaidya, A.N. and Khardenavis, A.A. (2018). Optimization and Applicability of Bioprocesses. Springer Verlag, Berlin.
  429. Quantrille, T.E. and Liu, Y.A. (1991). Artificial Intelligence in Chemical Engineering. Academic Press, San Diego.
  430. Quinn, J.B. (1980). Strategies for Change: Logical Incrementalism. Homewood, Irwin.
  431. Quinn, S. and Gaughran, W. (2010). Bionics – An inspiration for intelligent manufacturing and engineering. Robotics and Computer-integrated Manufacturing, 26, 616–621.
  432. Rajagopal, D. (2018). A heuristic screening aid for consequential life cycle assessment. Journal of Industrial Ecology, 22, 1295–1306.
  433. Ramirez, M. (2012). Insights into eco-design practices amongst the world’s largest carmakers. [Online]. Available at: https://www.researchgate.net/profile/Mariano_Ramirez/publication/258630237_Insights_into_ecodesign_practices_amongst_the_world’s_largest_carmakers/links/00b49528be24bef2ac000000.pdf.
  434. Ramunni, G. (1995). Les sciences pour l’Ingénieur ; histoire du rendez-vous des sciences et de la société. CNRS, Paris.
  435. Rao, H., Schmidt, L.C., Bonin, J. and Robert, M. (2017). Visible-light driven methane formation from CO2 with a molecular iron catalyst. Nature, 548, 74–77.
  436. Raynal, J. (2016). L’impression 3D : un marché mondial à plus de 35 milliards de dollars en 2020 [Online]. Available at: http://www.industrie-techno.com/l-impression-3d-un-marche-mondial-a-plus-de-35-milliards-de-dollars-en-2020.45234.
  437. Reay, D., Ramshaw, C. and Harvey, A. (2008). Process Intensification: Engineering for Efficiency, Sustainability and Flexibility. Elsevier, Boston.
  438. Reed, E.J., Klumb, L., Koobatian, M. and Viney, C. (2009). Biomimicry as a route to new materials: What kinds of lessons are useful? Philosophical Transactions: Mathematical, Physical and Engineering Sciences, Bio-mimetics I: Functional Bio-surfaces, 367, 1571–1585.
  439. Remolona, R.F.M., Conway, M.F., Balasubramanian, S. and Fan, L. (2017). Hybrid ontology-learning materials engineering system for pharmaceutical products: Multi-label entity recognition and concept detection. Computers & Chemical Engineering, 107, 49–60.
  440. Renaudot, R. (2013). Conception, fabrication de nouvelles puces micro-fluidiques à géométrie programmable et reconfigurable reposant sur les principes d’électro-mouillage et de di-électrophorèse liquide. PhD thesis, Université de Grenoble, Grenoble.
  441. Rendall, R., Chiang, L.H. and Reis, M.S. (2019). Data-driven methods for batch data analysis – A critical overview and mapping on the complexity scale. Computers & Chemical Engineering, 124, 1–13.
  442. République française (2018). 50 mesures pour une économie 100% circulaire [Online]. Available at: https://www.actu-environnement.com/media/pdf/news-31129-frec.pdf.
  443. Restoueix, O. (2016). Exploiter les résultats de l’évaluation du risque chimique HSE : priorités, plan d’actions, pilotage. Techniques de l’Ingénieur, 0747.
  444. Retzbach, A., Retzbach, J., Rahnke, M., Otto, L. and Maier, M. (2011). Public understanding of science and the perception of nanotechnology: The roles of interest in science, methodological knowledge, epistemological beliefs, and beliefs about science. Journal of Nanoparticle Research, 13, 6231–6244.
  445. Reyes, D.R., Iossifidis, D., Auroux, P.-A. and Manz, A. (2002). Micro total analysis systems 1. Introduction, theory, and technology. Analytical Chemistry, 74, 2623–2636.
  446. Richer, M. (2019). Le grand renversement : de l’engagement à l’intelligence collective [Online]. Available at: http://management-rse.com/2019/03/12/le-grand-renversement-de-lengagement-a-lintelligence-collective/.
  447. Rodrigues, A. and Cussler, E.L. (2016). Teaching chemical product design. Education for Chemical Engineers, 14, 43–48.
  448. Romer, P.M. (1994). The origin of endogenous growth. Journal of Economic Perspectives, 8, 3–22.
  449. Rose, J. (2001). Profession quasi-chercheur. L’Harmattan, Paris.
  450. Rosolen, S.G., Hugot, J.-P., Veillerot, F. and Pluchet, A. (2018). Être chercheur au XXIe siècle dans un environnement numérique [Online]. Available at: http://documents.irevues.inist.fr/handle/2042/68225.
  451. Roussel, F. (2018). Économie circulaire : l’écoconception et un plan ressources au menu de la feuille de route [Online]. Available at: https://www.actu-environnement.com/ae/news/economie-circulaire-ecoconception-plan-ressources-30630.php4#xtor=ES-6.
  452. Sabonnadière, J.C. and Hadjsaïd, N. (2012). SmartGrid. ISTE Ltd, London, and Wiley, New York.
  453. Sardin, M. (2013). L’usine du futur : vers un génie des procédés durables. In Le développement durable à découvert, Euzen, A., Eymard, L. and Gaill, F. (eds). CNRS, Paris, 306–307.
  454. Schenk, P.M., Thomas-Hall, S.R., Stephens, E., Marx, U.C., Mussgnug, J.H., Posten, C., Kruse, O. and Hankamer, B. (2008). Second generation biofuels: High-efficiency microalgae for biodiesel production. BioEnergy Research, 1, 20–43.
  455. Schilling, E.A., Kamholz, A.E. and Yager, P. (2002). Cell lysis and protein extraction in a microfluidic device with detection by a fluorogenic enzyme assay. Analytical Chemistry, 74, 1798–1804.
  456. Schmitz, A. (2017). Open integrated factory: Three innovations at Hannover Messe 2017 [Online]. Available at: https://news.sap.com/2017/04/open-integrated-factory-three-innovations-at-hannover-messe-2017/.
  457. Schmidt, L.D. and Dauenhauer, P.J. (2007). Hybrid routes to biofuels. Nature, 447, 914–915.
  458. Schneider, S. and Spieth, P. (2013). Business model innovation: Towards an integrated future research agenda. International Journal of Innovation Management, 17(1340001).
  459. Schwarz, V. and Tognola, J. (2015). L’industrie chimique et l’énergie : la situation en France et dans le monde. Annales des Mines – Réalités industrielles, 2, 42–47.
  460. Scuricini, G.B. (1988). Complexity in large technological systems. In Measures of Complexity, Peliti, I. and Vulpiani, A. (eds). Springer Verlag, Berlin, 88–101.
  461. Sengupta, D. and Pike, R.W. (2012). Chemicals from Biomass: Integrating Bioprocesses into Chemical Production Complexes for Sustainable Development. CRC Press, New York.
  462. Sentilhes, G. (2016). Vive la troisième révolution industrielle. NextStage AM, Paris.
  463. Seriţan, G., Triştiu, I., Fierăscu, G. and Vatu, R. (2018). Assessment for efficient operation of smart grids using advanced technologies. In 2018 International Conference and Exposition on Electrical and Power Engineering (EPE). Iasi, 18–19 October.
  464. Serssar, Y. and Tossa, P. (2018). Les émissions polluantes liées au fonctionnement des imprimantes 3D. Environnement, risques et santé, 17, 481–486.
  465. SFGP – Société française de génie des procédés (2017). Livre blanc de la SFGP – le génie des procédés en France [Online]. Available at: http://assises-sfgp.fr/_plugins/flipbook/sfgp/_attachments-flipbook/pourquoi-les-assises-article-2/LIVRE%2520BLANC%2520-%2520LE%2520GENIE%2520DES%2520PROCEDES%2520EN%2520FRANCE%2520-%25202017.pdf/_contents/ametys-internal%253Asites/sfgp/ametys-internal%253Acontents/pourquoi-les-assises-article-2/ametys-internal%253Aattachments/LIVRE%2520BLANC%2520-%2520LE%2520GENIE%2520DES%2520PROCEDES%2520EN%2520France%2520-%25202017.pdf/book.html#page/1.
  466. Shahan, Z. (2017). What changed in the EV battery market in November? [Online]. Available at: https://cleantechnica.com/2017/12/17/changed-ev-battery-market-november/.
  467. Shahan, Z. (2019). New report on plastics & climate – The hidden costs of a plastic planet [Online]. Available at: https://cleantechnica.com/2019/05/18/new-report-plastic-climate-the-hidden-costs-of-a-plastic-planet-ciel/?utm_source=CleanTechnica+News&utm_campaign=09b2f79bf9-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-09b2f79bf9-331991893.
  468. Shahriari, M. and Simpson, G.K. (2005). Process complexity measurement – A tool for assessing process options. In Proceedings of the 7th World Congress of Chemical Engineering, Incorporating the 5th European Congress of Chemical Engineering. IchemE, Glasgow.
  469. Shakey, N. (2017). AI implants will allow us to control our homes with our thoughts within 20 years, government report claims [Online]. Available at: http://www.telegraph.co.uk/science/2017/10/15/ai-implants-will-allow-us-control-homes-thoughts-within-20-years/.
  470. SIA Partners (2019). Quelle trajectoire pour atteindre un mix électrique entièrement renouvelable en 2050 ? [Online]. Available at: http://www.energie.sia-partners.com/20190116/quelle-trajectoire-pour-atteindre-un-mix-electrique-entierement-renouvelable-en-2050-cycle.
  471. Silberzahn, P. (2017). Innovation de rupture : cette fausse impression de vitesse [Online]. Available at: https://philippesilberzahn.com/2017/10/30/innovation-de-rupture-cette-fausse-impression-de-vitesse/.
  472. Simon, H.A. (1996). The Sciences of the Artificial, 3rd edition. MIT Press, Cambridge, MA.
  473. Sokal, A. and Bricmont, J. (1997). Impostures intellectuelles. Odile Jacob, Paris.
  474. Stafford, W., Lotter, A., Brent, A. and von Maltitz, G. (2017). Biofuels technology: A look forward. [Online]. Available at: https://www.wider.unu.edu/sites/default/files/wp2017-87.pdf.
  475. Statista (2015). Consommation d’énergie et de matières premières dans l’industrie chimique en France de 2011 à 2013, par type d’énergie (en kilotonnes d’équivalent de pétrole) [Online]. Available at: https://fr.statista.com/statistiques/558152/consommation-energie-matieres-primaires-industrie-chimique-par-source-france/.
  476. Stengers, I. (2006). La vierge et le neutrino – le scientifique dans la tourmente. Les Empêcheurs de penser en rond, Paris.
  477. Stephanopoulos, G. and Han, C. (1996). Intelligent systems in process engineering: A review. Computers & Chemical Engineering, 20, 743–791.
  478. Stephen, W. (2015). Think Global, Act Local: The Life and Legacy of Patrick Geddes. Luath Press Ltd, London.
  479. Stewart, R., Fantke, P., Bjørn, A., Owsianiak, M., Molin, C., Hauschild, M.Z. and Laurent, A. (2018). Life cycle assessment in corporate sustainability reporting: Global, regional, sectoral, and company-level trends. Business Strategy and the Environment, 27, 1751–1764.
  480. Stiglitz, J.E. and Greenwald, B.C. (2014). Creating a Learning Society – A New Approach to Growth, Development, and Social Progress. Columbia University Press, New York.
  481. Suchaud, N. (2016). Prospective : quel impact l’innovation numérique peut-elle vraiment avoir sur l’économie ? [Online]. Available at: http://www.maddyness.com/prospective/2016/01/04/g9plus-idate-innovation-economie/.
  482. Sundar, S.S. and Marathe, S.S. (2010). Personalization versus customization: The importance of agency, privacy, and power usage. Human Communication Research, 36, 298–322.
  483. Švarc, J. and Dabić, M. (2017). Evolution of the knowledge economy: A historical perspective with an application to the case of Europe. Journal of the Knowledge Economy, 8, 159–176.
  484. Tabeling, P. (2003). Introduction à la micro-fluidique. Belin, Paris.
  485. Taddeï, F. (2009). Former des constructeurs de savoirs collaboratifs et créatifs : un défi majeur pour l’éducation du XXIe siècle. OCDE, Paris.
  486. Takeda, H., Cometto, C., Ishitani, O. and Robert, M. (2017). Electrons, photons, protons and Earth-abundant metal complexes for molecular catalysis of CO2 reduction. ACS Catalysis, 7, 70–88.
  487. Tastevin, Y.P. (2018). Vers une ingénierie frugale ? In Rapport de Prospective. INSIS-CNRS, Paris.
  488. Taylor, M. (2017). Humans have questions, nature has answers – The emerging field of biomimicry looks to nature’s billions of years of R&D for a solutions blueprint. Laboratory Equipment, 8–11.
  489. Tchouang-tseu (1969). Œuvres complètes. Gallimard/UNESCO, Paris.
  490. Terrier, P., Glaus, M. and Raufflet, E. (2017). Bio-mimétisme : outils pour une démarche éco-innovante en ingénierie. VertigO – la revue électronique en sciences de l’environnement [Online]. Available at: https://doi.org/10.4000/vertigo.17914.
  491. Thackara, J. (2006). In the Bubble: Designing in a Complex World. MIT Press, Boston.
  492. The Beam (2019). Circular economy: Redesigning economy beyond a product [Online]. Available at: https://cleantechnica.com/2019/02/22/circular-economy-redesigning-economy-beyond-a-product/.
  493. Thiaudière, C. (1993). En finir avec les naïvetés. Le journal du Sida, Special edition, May.
  494. Thurston, C.W. (2019). Top 10 global solar market trends for 2019 [Online]. Available at: https://cleantechnica.com/2019/01/22/top-10-global-solar-market-trends-for-2019/.
  495. Tian, Y., Demirel, S.E., Faruque Hasan, M.M. and Pistikopoulos, E.N. (2018). An overview of process systems engineering approaches for process intensification: State of the art. Chemical Engineering and Processing – Process Intensification, 133, 160–210.
  496. Tinant, S. (2018). La quatrième révolution industrielle ou l’Industrie 4.0 [Online]. Available at: http://genie-electrique.insa-strasbourg.fr/la-quatrieme-revolution-industrielle-ou-lindustrie-4-0/.
  497. Torres-Martínez, L., Ruiz-Gómez, M.A. and Moctezuma, E. (2017). Features of crystalline and electronic structures of Sm2MTaO7 (M=Y, In, Fe) and their hydrogen production via photo-catalysis. Ceramics International, 43, 3981–3992.
  498. Tostain, B. (2016). Formations multimodales, vers une économie de la connaissance [Online]. Available at: https://fr.slideshare.net/benoitos/formations-multimodales-vers-une-conomie-de-la-connaissance.
  499. Towler, G. and Sinnott, R. (2013). Chemical Engineering Design – Principles, Practice and Economics of Plant and Process Design. Elsevier, London.
  500. Travers, J. (2018). Jennifer Rupp: Engineering practical ceramics [Online]. Available at: http://news.mit.edu/2018/mit-jennifer-rupp-engineering-practical-ceramics-0209.
  501. Trégouët, R. (2019). Attention : ce sera bientôt l’heure de l’hydrogène [Online]. Available at: https://www.rtflash.fr/attention-ce-sera-bientot-l-heure-l-hydrogene/article.
  502. Trystram, G. (2018). Produire autrement : une ingénierie autour des ressources renouvelables, de leur valorisation et de l’inscription dans la transition vers une soutenabilité globale. Outlook report, INSIS-CNRS, Paris.
  503. Tushman, M.L. (1978). Technical communication in R&D laboratories: The impact of project work characteristics. Academy of Management Journal, 21, 624–645.
  504. UIC – Union des industries chimiques (2015). Le bilan 2014 de la consommation d’énergie de l’industrie chimique en France [Online]. Available at: http://www.uic.fr/Industrie-chimique/Chiffres-cles-et-conjoncture/La-consommation-d-energie-de-l-industrie-chimique-en-France.
  505. UIC – Union des industries chimiques (2016). L’industrie chimique : facteur-clé de l’économie française [Online]. Available at: http://www.uic.fr/content/download/1027861/11833398/file/Rapport%20de%CC%81taille%CC%81%202016.pdf.
  506. UM – Up-Magazine (2018). L’IA, au service de l’entreprise augmentée [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7864:l-ia-au-service-de-l-entreprise-augmentee&catid=252:intelligence-artificielle&Itemid=2043.
  507. Umich (2015). Deforestation [Online]. Available at: http://resilience.earth.lsa.umich.edu/units/deforestation/index.html.
  508. UNEP (2013). Metal recycling – Opportunities, limits, infrastructure [Online]. Available at: http://wedocs.unep.org/bitstream/handle/20.500.11822/8423/-Metal%20Recycling%20Opportunities%2c%20Limits%2c%20Infrastructure-2013Metal_recycling.pdf?sequence=3&isAllowed=y.
  509. Université de Bordeaux (2015). Intégrité scientifique dans les métiers de la recherche [Online]. Available at: https://www.fun-mooc.fr/courses/course-v1:ubordeaux+28007+session01/about.
  510. Université de Lyon (2019). Éthique de la recherche [Online]. Available at: https://www.fun-mooc.fr/courses/course-v1:universite-lyon+91001+session02/about.
  511. USGS – US Geological Survey (2019). Mineral commodity summaries 2019 [Online]. Available at: https://minerals.usgs.gov/minerals/pubs/mcs/2019/mcs2019.pdf.
  512. Valaskakis, K. (2014). La prospective en trois leçons : mon apprentissage personnel. In La prospective scientifique en action, Durance, P. (ed.). Odile Jacob, Paris, 55–65.
  513. Valencia, R.C. (2013). The future of the chemical industry by 2050 [Online]. Available at: http://www.rsc.org/chemistryworld/2014/01/future-chemical-industry-cayuela-valencia.
  514. van Gerven, T. and Stankiewicz, A. (2009). Structure, energy, synergy, time – The fundamentals of process intensification. Industrial & Engineering Chemistry Research, 48, 2465–2474.
  515. van Kan, J.A., Shao, P.G., Wang, Y.H. and Malar, P. (2011). Proton beam writing a platform technology for high quality 3D metal molds fabrication for nanofluidic applications. Microsystem Technologies, 17, 1519–1527.
  516. Varenne, F. (2001). What does a computer simulation prove? Society for Computer Simulation (SCS), 549–554 [Online]. Available at: https://hal.archives-ouvertes.fr/hal-00004125v2/document.
  517. Varenne, F. (2016). Histoire de la modélisation : quelques jalons. Colloque Académie des technologies/CNRS, 9–35 [Online]. Available at: http://academie-technologies-prod.s3.amazonaws.com/2018/02/14/16/21/12/427/Mod_lisation_S_L_Actes_2.pdf.
  518. Varma, A. and Grossmann, I.E. (2014). Evolving trends in chemical engineering education. AIChE Journal, 60, 3692–3700.
  519. Vasan, P. (2015). Handbook of Research on Artificial Intelligence Techniques and Algorithms. IGI Global, New York.
  520. Venkatasubramanian, V. (2019). The promise of artificial intelligence in chemical engineering: Is it here, finally? AIChE Journal, 65, 466–478.
  521. Vernon, M.M., Balas, E.A. and Momani, S. (2018). Are university rankings useful to improve research? A systematic review PLOS One [Online]. Available at: https://journals.plos.org/plosone/article?id=10. 1371/journal.pone.0193762.
  522. Vilkner, T., Janasek, D. and Manz, A. (2004). Micro total analysis systems. Recent developments. Analytical Chemistry, 76, 3373–3386.
  523. Vincent, G. (2016). Importation d’une substance dans l’EEE, déterminer qui est responsable de la mise sur le marché au sens de la réglementation REACH. Techniques de l’Ingénieur, 0144.
  524. Vinck, D. and Hubert, M. (2017). Nanotechnologies, l’invisible révolution : au-delà des idées reçues. Le Cavalier Bleu, Paris.
  525. Vinkhuyzen, M. (2019). The Osborne effect on the auto industry [Online]. Available at: https://cleantechnica.com/2019/02/25/the-osborne-effect-on-the-auto-industry/?utm_source=CleanTechnica+News&utm_campaign=e92af34302-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-e92af34302-331991893.
  526. Virilio, P. (2010). L’administration de la peur. Textuel, Paris.
  527. Viveret, P. (2012). La cause humaine : du bon usage de la fin du monde. Les liens qui libèrent, Paris.
  528. Volstad, N.L. and Boks, C. (2012). On the use of biomimicry as a useful tool for the industrial designer. Sustainable Development, 20, 189–199.
  529. von Hippel, E. and Tyre, M. (1995). How “learning by doing” is done: Problem identification in novel process equipment. Research Policy, 1–12 [Online]. Available at: https://evhippel.files.wordpress.com/2013/08/learning-by-doing-1995.pdf.
  530. von Neumann, J. (1947). Les fondements mathématiques de la mécanique quantique. Alcan/PUF, Paris.
  531. Walczak, R. and Adamski, K. (2015). Inkjet 3D printing of microfluidic structures – On the selection of printer towards printing your own microfluidic chips. Journal of Micromechanics and Microengineering, 25(085013).
  532. Wall, K. (2009). Complexity of chemical products, plants, processes and control systems. Chemical Engineering Research and Design, 87, 1430–1437.
  533. Wall, K., Sharratt, P.N., Sadr-Kazemi, N. and Borland, J.N. (2001). Plant-independent process representation. Organic Process Research & Development, 5, 434–437.
  534. Walmsley, T.G., Varbanov, P.S., Su, R. and Ong, B. (2018). Frontiers in process development, integration and intensification for circular life cycles and reduced emissions. Journal of Cleaner Production, 201, 178–191.
  535. Wautelet, M. (2014). Les nanotechnologies. Dunod, Paris.
  536. WB – World Bank (2010). Second-generation biofuels – Economics and policies [Online]. Available at: http://documents.worldbank.org/curated/en/735751468331906258/pdf/WPS5406.pdf.
  537. WB – World Bank (2017). Trouble in the making? The future of manufacturing-led development [Online]. Available at: https://openknowledge.worldbank.org/bitstream/handle/10986/27946/9781464811746.pdf.
  538. WCS – World Chemical Summit (2017). Programme, Barcelona. 4–5 October [Online]. Available at: http://www.worldchemicalsummit.com/en/home?utm_source=paidsearch&utm_campaign=captacionvisitante&utm_medium=search&amc=searchpaid.elogia.42885.50284.84235.worldchemmicalsummit-general.txt-general.
  539. WEF – World Economic Forum (2018). Harnessing the fourth Industrial Revolution for life on land [Online]. Available at: http://www3.weforum.org/docs/WEF_Harnessing_4IR_Life_on_Land.pdf.
  540. WEF – World Economic Forum (2019a). Shaping the sustainability of production systems: Fourth Industrial Revolution technologies for competitiveness and sustainable growth [Online]. Available at: http://www3.weforum.org/docs/WEF_Shaping_the_Sustainability_Production_Systems.pdf.
  541. WEF – World Economic Forum (2019b). Fostering effective energy transition – 2019 edition [Online]. Available at: http://www3.weforum.org/docs/WEF_Fostering_Effective_Energy_Transition_2019.pdf.
  542. Weng, Z., Jiang, J., Wu, Y., Wu, Z., Guo, X., Materna, K.L., Liu, W., Batista, V.S., Brudvig, G.W. and Wang, H. (2016). Electrochemical CO2 reduction to hydrocarbons on a heterogeneous molecular Cu catalyst in aqueous solution. Journal of the American Chemical Society, 138, 8076–8079.
  543. Weuster-Botz, D. (2003). Bio-process engineering. Chemie Ingenieur Technik, 75, 1515–1518.
  544. Wickramasingha, S.R., Cobb Jr., J.T. and Patterson, G.K. (2007). Educational perspective on the future of chemical engineering [Online]. Available at: http://www.aiche.org/resources/publications/cep/2007/january/educational-perspective-future-chemical-engineering.
  545. Whitesides, G.M. (2006). The origins and the future of microfluidics. Nature, 442, 368–373.
  546. Wikipedia (2015). Micro-fluidique [Online]. Available at: https://fr.wikipedia.org/wiki/Microfluidique.
  547. Wikipedia (2018). Interopérabilité [Online]. Available at: https://fr.wikipedia.org/wiki/Interop%C3%A9rabilit%C3%A9.
  548. Wikipedia (2019). Analyse du cycle de vie [Online]. Available at: https://fr.wikipedia.org/wiki/Analyse_du_cycle_de_vie.
  549. Woesner, R. (2010). La territorialisation : proposition pour la compréhension du phénomène par une entrée systémique. Revue d’économie régionale & urbaine, 669–685.
  550. Wolf, M. (2009). Consentement, autonomie, complexité [Online]. Available at: http://www.ethique.sorbonne-paris-cite.fr/sites/default/files/texte%20wolf%202009.pdf.
  551. Wolf, M. (2014). Lunch with the FT: Edmund Phelps. Financial Times, June 13 [Online]. Available at: https://www.ft.com/content/c88b2610-f095-11e3-b112-00144feabdc0.
  552. WRI – World Resources Institute (2018). Creating a sustainable food future – A menu of solutions to feed nearly 10 billion people by 2050 [Online]. Available at: https://wriorg.s3.amazonaws.com/s3fs-public/creating-sustainable-food-future_0.pdf.
  553. Yau, C. (2019). Hong Kong to spend HK$45 billion grooming the next leaders of technology and boosting innovation [Online]. Available at: https://www.scmp.com/news/hong-kong/hong-kong-economy/article/2187966/hong-kong-spend-hk45-billion-grooming-next-leaders.
  554. Yegros-Yegros, A., Rafols, I. and D’Este, P. (2015). Does interdisciplinary research lead to higher citation impact? The different effect of proximal and distal interdisciplinarity. PLOS ONE, 12 August.
  555. Zacklad, M. (2007). L’économie de fonctionnalité encastrée dans la socio-économie des transactions coopératives : dynamique servicielle et fidélisation soutenable. [Online]. Available at: https://archivesic.ccsd.cnrs.fr/file/index/docid/142759/filename/EF_DD_Zacklad_Cerisy7.pdf.
  556. Zhang, C., Zhou, G., Lu, Q. and Chang, F. (2018). Generating significant subassemblies from 3D assembly models for design reuse. International Journal of Production Research, 56, 4744–4761.
  557. Zhou, W. (2019). University of Arkansas: Research group delegates 3D printing duties to their swarm of robots [Online]. Available at: https://3dprint.com/237475/university-arkansas-researchers-delegate-3d-printing-duties-swarm-of-robots/.

Appendix 1

  1. AEF Info (2019). Antoine Petit (CNRS) aux députés : ‘Nous sommes à peu près le seul pays dont les dépenses de R&D stagnent depuis 20 ans’ [Online]. Available at: https://www.linkedin.com/pulse/antoine-petit-cnrs-aux-députés-nous-sommes-à-peu-près-aef-info/.
  2. Allais, M. (1999). La mondialisation, la destruction des emplois et de la croissance, l’évidence empirique. Clément Juglar, Paris.
  3. André, J.-C. (2017a). From Additive Manufacturing to 3D/4D Printing 1: From Concepts to Achievements. ISTE Ltd, London and John Wiley & Sons, New York.
  4. André, J.-C. (2017b). From Additive Manufacturing to 3D/4D Printing 2: Current Techniques, Improvements and their Limitations. ISTE Ltd, London and John Wiley & Sons, New York.
  5. André, J.-C. (2017c). From Additive Manufacturing to 3D/4D Printing 3: Breakthrough Innovations: Programmable Material, 4D Printing and Bio-printing. ISTE Ltd, London and John Wiley & Sons, New York.
  6. André, J.-C. (2019a). Industry 4.0: Paradoxes and Conflicts. ISTE Ltd, London and John Wiley & Sons, New York.
  7. André, J.-C. (2019b). Horizon Europe: To avoid that there are only tears left to cry about!. Internal document, Comments transmitted to the DGRI of the European Union, Brussels.
  8. Atlan, H. (1999). Les étincelles du hasard. Le Seuil, Paris.
  9. Avenir-Suisse (2019). (In)égalités – que faire ? Kaléidoscope des contributions sur une question sociopolitique brûlante [Online]. Available at: https://www.avenir-suisse.ch/fr/inegalite-que-faire/.
  10. Barnard, M. (2018). Chaos theory does not invalidate or explain Global Warming [Online]. Available at: https://cleantechnica.com/2018/08/23/chaos-theory-does-not-invalidate-or-explain-global-warming/?utm_source=feedburner&utm_medium=feed&utm_campaign=Feed%3A+IM-cleantechnica+%28CleanTechnica%29.
  11. Bergson, H. (1935). Les deux sources de la morale et de la religion. PUF, Paris.
  12. Brecht, B. (2006). The Solution [Online]. Available at: https://mronline.org/2006/08/14/brecht140806-html/.
  13. Brunet-Labbez, J. (2013). Innover avec la génération Y. Studyrama, Paris.
  14. Castoriadis, C. (1996). The Rising Tide of Insignificancy: The Big Sleep [Online]. Available at: http://www.notbored.org/RTI.pdf.
  15. Chrétien, C. (1991). La science à l’œuvre. Hatier, Paris.
  16. Citton, Y. (2013). Pour une interprétation littéraire des controverses scientifiques. Quae, Paris.
  17. DGA – Direction générale de l’armement (2009). Quelques explications sur l’échelle des TRL (Technology Readiness Level) [Online]. Available at: https://www.entreprises.gouv.fr/files/files/directions_services/politique-et-enjeux/innovation/tc2015/technologies-cles-2015-annexes.pdf.
  18. Diamandis, P. (2015). Abundance: The Future is Better than You Think. Free Press, New York.
  19. Dupin, E. (2016). Les défricheurs – voyage dans la France qui innove vraiment. La Découverte, Paris.
  20. EC – European Commission (2019a). The bio-economy strategy [Online]. Available at: https://ec.europa.eu/research/bioeconomy/index.cfm?pg=policy&lib=strategy.
  21. EC – European Commission (2019b). Horizon 2020 – Work Programme 2018–2020 [Online]. Available at: https://ec.europa.eu/research/participants/data/ref/h2020/wp/2018-2020/main/h2020-wp1820-intro_en.pdf.
  22. EUR-Lex (2019). Communication from the commission to the European parliament, the council, the European economic and social committee and the committee of the regions. A European strategy for plastics in a circular economy [Online]. Available at: https://eur-lex.europa.eu/legal-content/EN/TXT/?qid=1516265440535&uri=COM:2018:28:FIN.
  23. European Research Council (2018). ERC Work Programme 2019 [Online]. Available at: http://ec.europa.eu/research/participants/data/ref/h2020/wp/2018-2020/erc/h2020-wp19-erc_en.pdf.
  24. Frogier, G. (2006). La mondialisation contre le développement durable. Peter Lang/PUF, Paris.
  25. Giesen, K.G. (2000). Production d’artéfacts et ingénierie sociale ; les institutions internationales comme agents paradigmatiques. AFRI 1, 70–86 [Online]. Available at: http://www.afri-ct.org/IMG/pdf/giesen2000.pdf.
  26. Giuliani, J.D. (2019a). Europe : se projeter plutôt que se protéger ! [Online]. Available at: https://www.lesechos.fr/idees-debats/cercle/europe-se-projeter-plutot-que-se-proteger-1012746.
  27. Giuliani, J.D. (2019b). La grande bascule. École de guerre, Paris.
  28. Gorz, A. (1978). Écologie et politique. Le Seuil, Paris.
  29. Gorz, A. (2008). Ecologica. Galilée, Paris.
  30. Guellec, D. (1992). La technologie et l’économie, les relations déterminantes. Revue économique, 43, 1137–1142.
  31. Guy, B. (2012). Éthique et épistémologie : convergence entre la démarche épistémologique (chercher le vrai) et la démarche éthique (chercher le bien) : point de vue des sciences de l’ingénieur [Online]. Available at: https://halshs.archives-ouvertes.fr/hal-00736247/document.
  32. Heidelberg Appeal (2010). Les réactions de Global Chance à l’appel de Heidelberg [Online]. Available at: http://www.global-chance.org/IMG/pdf/GC1p24.pdf.
  33. James, H. (2009). The Creation and Destruction of Value. Harvard University Press, Cambridge.
  34. IMMRC – Informal meeting of ministers responsible for competitiveness (Research) (2019a). Missions as a strategic tool in Horizon Europe – Context and aim of the discussion [Online]. Available at: https://eu2019.fi/documents/11707387/14482217/Presidency+discussion+paper+-+Missions+as+a+strategic+tool+in+Horizon+Europe.pdf/34b71109-edb4-ddb7-5b54-f7a5d55f0e2d/Presidency+discussion+paper+-+Missions+as+a+strategic+tool+in+Horizon+Europe.pdf.
  35. IMMRC – Informal meeting of ministers responsible for competitiveness (Research) (2019b). Finnish presidency: Agenda for sustainable growth for the European Union – Background and rationale [Online]. Available at: https://eu2019.fi/documents/11707387/14482217/Chapeau+-+Sustainable+Growth.pdf/cf7d1b0a-ca43-0a73-17af-04ca83b375c0/Chapeau+-+Sustainable+Growth.pdf.
  36. IMMRC – Informal meeting of ministers responsible for competitiveness (Research) (2019c). Research and innovation as drivers of sustainable growth – Introduction and aim of the discussion [Online]. Available at: https://eu2019.fi/documents/11707387/14482217/Presidency+discussion+paper+-+Research+and+innovation+as+drivers+of+sustainable+growth.pdf/4127dc17-90b2-4c77-2a08-ab7b1c821865/Presidency+discussion+paper+-+Research+and+innovation+as+drivers+of+sustainable+growth.pdf.
  37. Latouche, S. (2013). Jacques Ellul – contre le totalitarisme technicien. Le Passager clandestin, Neuvy-en-Champagne.
  38. Lenglet, F. (2014). La fin de la mondialisation. Pluriel, Paris.
  39. Mapping-Consulting (2012). Liens entre les technologies-clés génériques, les filières industrielles, les échelles TRL, nos défis sociétaux. Note, Toulouse.
  40. Martin, S. (2019). L’Ademe pointe un risque de désengagement des français sur l’écologie [Online]. Available at: https://www.la-croix.com/Sciences-et-ethique/Environnement/LAdeme-pointe-risque-desengagement-Francais-lecologie-2019-03-30-1201012347.
  41. Milanovic, B. (2016). Global Inequality – A New Approach for the Age of Globalization. Harvard University Press, Cambridge.
  42. Montesquieu, C. (1964). L’Esprit des lois, première partie, II.2 : du gouvernement et des lois relatives à la démocratie. Le Seuil, Paris.
  43. NAP – National Academies Press (2017). Securing Advanced Manufacturing in the United States: The Role of Manufacturing USA: Proceedings of a Workshop [Online]. Available at: http://www.nap.edu/24875.
  44. NSBSEI – National Science Board Science and Engineering Indicators (2016). Science and engineering indicators [Online]. Available at: https://www.nsf.gov/statistics/2016/nsb20161/.
  45. Pesqueux, Y. (2013). Le management de l’innovation dans les modèles de gouvernance de l’entreprise. In L’Innovation : analyser, anticiper, agir, Boutiller, S., Djellal, F. and Uzunidis, D. (eds). Peter Lang, Brussels, 129–141.
  46. Rodrik, D. (2011). The Globalization Paradox – Democracy and the Future of the World Economy. W.W. Norton Co., New York.
  47. SFGP – Société française de génie des procédés (2017). Livre blanc – le génie des procédés en France [Online]. Available at: http://assises-sfgp.fr/fr/index.html.
  48. Simon, H.A. (1973). The structure of Ill structured problems. Artificial Intelligence, 4, 181–201 [Online]. Available at: https://cschan.public.iastate.edu/235/6_Simon_Ill_defined_problem.pdf.
  49. SNR – Stratégie nationale de la recherche (2015). Stratégie nationale de recherche : dix grands défis sociétaux [Online]. Available at: http://www.enseignementsup-recherche.gouv.fr/cid78733/strategie-nationale-de-recherche-dix-grands-defis-societaux.html.
  50. Stiegler, B. (2003). Aimer, s’aimer, nous aimer – du 11 septembre au 21 avril. Galilée, Paris.
  51. Stiegler, B. (2006). Ars Industrialis – ré-enchanter le monde. Flammarion, Paris.
  52. The Beam (2019). Against racism, sexism & oppression: Uniting across divisions to solve climate change [Online]. Available at: https://cleantechnica.com/2019/02/02/against-racism-sexism-oppression-uniting-across-divisions-to-solve-climate-change/.
  53. van Andel, P. and Bourcier, D. (2009). In Collected Papers, volume 6, Hartshone, C., Weiss, P. and Burks, A.W. (eds). Harvard University Press, Boston, 525.
  54. Vanden Abeele, D. and André, J.-C. (2017). Proposal from the French Groupe Thématique national NMBP (2017). Document, Ministère de la Recherche, Brussels/Horizon Europe, Paris.
  55. von Wright, G. (1993). Le mythe du progrès. L’Arche, Paris.

Appendix 2

  1. Académie des technologies (2018). Les français et le progrès technologique [Online]. Available at: https://www.dropbox.com/s/8adtqrqmskqzxnz/OpinionWay%20pour%20l%27Acad%C3%A9mie%20des%20technologies%20-%20Novembre%202018.pdf?dl=0.
  2. Actu IA (2019). Travailler moins grâce à l’IA ? [Online]. Available at: https://www.actuia.com/actualite/travailler-moins-grace-a-lia/.
  3. Allanic, A.L., Jezequel, J.Y. and André, J.-C. (1992). Application of neural networks theory to identify two dimensional fluorescence spectra. Analytical Chemistry, 64, 2618–22.
  4. Amazon (2018). Dynamic detection of firewall misconfigurations [Online]. Available at: http://appft.uspto.gov/netacgi/nph-Parser?Sect1=PTO2&Sect2=HITOFF&u=%2Fnetahtml%2FPTO%2Fsearchadv.html&r=4&p=1&f=G&l=50&d=PG01&S1=amazon.AANM.&OS=aanm/amazon&RS=AANM/amazon.
  5. André, J.-C. (2019). Industry 4.0: Paradoxes and Conflicts. ISTE Ltd, London and John Wiley & Sons, New York.
  6. Azencott, C.A. (2017). Entraînez un réseau de neurones simple [Online]. Available at: https://openclassrooms.com/fr/courses/4470406-utilisez-des-modeles-supervises-non-lineaires/4730716-entrainez-un-reseau-de-neurones-simple.
  7. Babinet, G. (2016a). Big Data, penser l’homme et le monde autrement. Le Passeur, Paris.
  8. Babinet, G. (2016b). Transformation digitale : l’avènement des plateformes. Le Passeur, Paris.
  9. Babinet, G. (2018). Numérique : la fin de l’État-nation ? [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=8182:numerique-la-fin-de-l-etat-nation-partie-1-les-glissements-de-souverainete-induits-par-la-technologie&catid=249:transition-numerique&Itemid=2027.
  10. Baily, S. (2018). Un renouveau de spins quantique. Pour la Science [Online]. Available at: https://www.pourlascience.fr/sd/physique/un-nouveau-liquide-de-spins-quantique-12759.php.
  11. Bretones, L. (2017). 100 idées pour une France numérique. Diateino, Paris.
  12. Céline, F. (1972). Voyage au bout de la nuit. Gallimard, Paris.
  13. Cérézuelle, D. (2011). La technique et la chair : essai de philosophie de la technique. Parangon/VS, Lyon.
  14. CNRS-INS2I (2018). Rapport de prospective du Conseil scientifique de l’institut des sciences de l’information et leurs interactions (INS2I) [Online]. Available at: https://hal.archives-ouvertes.fr/hal-01956087/document.
  15. Contact North (2018). Ten facts about Artificial Intelligence in teaching and learning [Online]. Available at: https://teachonline.ca/sites/default/files/tools-trends/downloads/ten_facts_about_artificial_intelligence_0.pdf.
  16. Darwin, C. (2013). L’origine des espèces : au moyen de la sélection naturelle ou la préservation des races favorisées dans la lutte pour la vie. Ultraletters, Paris [Online]. Available at : http://www.vliz.be/docs/Zeecijfers/Origin_of_Species.pdf.
  17. Devillers, L. (2017). Des robots et des hommes : mythes, fantasmes et réalité. Plon, Paris.
  18. Dias, G. (2018). L’ingénieur entre savoirs acquis et Industrie 4.0. R&D Projet, University of Lorraine, Nancy.
  19. Durance, P. (ed.) (2014). De l’industrie au développement durable. In La prospective scientifique en action. Odile Jacob, Paris, 11–14.
  20. Feynman, R.P. (2000). Vous voulez rire Monsieur Feynman ? Odile Jacob, Paris.
  21. Follett, M.P. (1949). Freedom and Coordination – Lectures in Business Organization Management. Trust Ltd., London.
  22. Friedman, Y. (2018). L’univers erratique – et si les lois de la nature ne suivaient aucune loi ? Édition de l’Éclat, Paris.
  23. Gaebel, M. (2013). MOOCS – Massive Open Online Courses. EUA Occasional Paper, Brussels [Online]. Available at: http://www.eua.eu/Libraries/publication/EUA_Occasional_papers_MOOCs.pdf?sfvrsn=2.
  24. Gaebel, M. (2014). MOOCs – A 2014 update. EUA Occasional Paper, Brussels [Online]. Available at: http://www.eua.eu/Libraries/publication/MOOCs_Update_January_2014.pdf?sfvrsn=2.
  25. Gaebel, M. and Zhang, T. (2018). Trends 2018 – Learning and teaching in the European Higher Education area [Online]. Available at: https://eua.eu/downloads/publications/trends-2018-Learning-and-teaching-in-the-european-higher-education-area.pdf.
  26. Gane, B.D., Zaidi, S.Z. and Pellegrino, J.W. (2018). Measuring what matters: Using technology to assess multidimensional learning. European Journal of Education, 53, 176–87.
  27. IEEE (2016). International roadmap for devices and systems [Online]. Available at: https://irds.ieee.org/images/files/pdf/2016_MM.pdf.
  28. Institut G9+ (2017). Construire une police prédictive. In 100 idées pour une France numérique, Bretones, L. (ed.). Diateino, Paris, 254–256.
  29. Institut Montaigne (2015). Big data et objets connectés – faire de la France un champion de la révolution numérique [Online]. Available at: https://www.institutmontaigne.org/ressources/pdfs/publications/rapport%20objets%20connecte%CC%81s(2).pdf.
  30. JRC – Joint Research Centre (2018). The impact of Artificial Intelligence on learning, teaching, and education [Online]. Available at: http://publications.jrc.ec.europa.eu/repository/bitstream/JRC113226/jrc113226_jrcb4_the_impact_of_artificial_intelligence_on_Learning_final_2.pdf.
  31. Kahneman, D. (2003). Maps of bounded rationality: Psychology for behavioral economics. The American Economic Review, 93, 1449–1475.
  32. Küpper, D., Kuhlmann, K., Köcher, S. Dauner, T. and Burggräf, P. (2017). The factory of the future [Online]. Available at: https://www.bcg.com/publications/2016/leaning-manufacturing-operations-factory-of-future.aspx.
  33. Lafargue, P. (1994). Le droit à la paresse. Mille et une nuits, Paris [Online]. Available at: http://debs.indstate.edu/l159r5_1904.pdf.
  34. Latonero, M. (2018). Governing Artificial Intelligence: Upholding human rights & dignity [Online]. Available at: https://datasociety.net/wp-content/uploads/2018/10/DataSociety_Governing_Artificial_Intelligence_Upholding_Human_Rights.pdf.
  35. Launois, D. (1968). L’électronique quantique. PUF, Paris.
  36. Laurini, R. (2013). La formation des ingénieurs face à la mondialisation. Hermes-Lavoisier, Paris.
  37. Lewis, A.M., Ferigato, C., Travagnin, M. and Florescu, E. (2018). The impact of quantum technologies on the EU’s future policies – Part 3 Perspectives for quantum computing. EUR 29402 EN report [Online]. Available at: http://publications.jrc.ec.europa.eu/repository/bitstream/JRC110412/quantum_computing_report_v5.4.pdf.
  38. Livezey, J.A. (2017). Learning and inferring representations of data in neural networks. PhD Thesis, University of Berkeley [Online]. Available at: https://pdfs.Semanticscholar.org/6a48/df3d31d3beeb3a941e06710578c183a52c68.pdf.
  39. Maillard, S. (2018). Disruption – préparez-vous à changer le monde. Dunod, Paris.
  40. Malong Technologies (2018). Who will win the AI race? If countries work together, then the answer could be all of us [Online]. Available at: https://www.weforum.org/agenda/2018/06/ai-arms-race-global-collaboration/.
  41. McKinsey (2018a). Digital manufacturing – Escaping pilot purgatory [Online]. Available at: https://www.mckinsey.com/~/media/mckinsey/business%20functions/operations/our%20insights/how%20digital%20manufacturing%20can%20escape%20pilot%20purgatory/digital-manufacturing-escaping-pilot-purgatory.ashx.
  42. McKinsey (2018b). What AI can and can’t do (yet) for your business [Online]. Available at: https://www.mckinsey.com/business-functions/mckinsey-analytics/our-insights/what-ai-can-and-cant-do-yet-for-your-business.
  43. Mislevy, R.J. (2018). Socio-cognitive Foundations of Educational Measurement. Routledge, New York.
  44. Monnier, B. (2018). Quel avenir pour l’IA ? [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=8166:quel-avenir-pour-l-ia&catid=252:intelligence-artificielle&Itemid=2043.
  45. Morales, O., Periago, F. and Vallejo, J.A. (2018). Robust optimal design of quantum electronic devices. Mathematical Problems in Engineering [Online]. Available at: https://doi.org/10.1155/2018/3095257.
  46. Nominacher, M. and Péletier, B. (2018). Artificial Intelligence policies. In The Digital Factory for Knowledge: Production and Validation of Scientific Results, Fabre, R. and Bensoussan, A. (eds). ISTE Ltd, London and John Wiley & Sons, New York, 71–76.
  47. Paschek, D., Luminosu, C.T. and Draghici, A. (2017). Automated business process management – In times of digital transformation using machine learning or artificial intelligence. MATEC Web of Conferences, 121 [Online]. Available at: https://www.matec-conferences.org/articles/matecconf/pdf/2017/35/matecconf_mse2017_04007.pdf.
  48. PRC – Pew Research Center (2018a). Public attitudes toward computer algorithms – Americans express broad concerns over the fairness and effectiveness of computer programs making important decisions in people’s lives [Online]. Available at: http://www.pewinternet.org/wp-content/uploads/sites/9/2018/11/PI_2018.11.19_algorithms_FINAL2.pdf.
  49. PRC – Pew Research Center (2018b). Artificial Intelligence and the future of humans [Online]. Available at: http://www.pewinternet.org/wp-content/uploads/sites/9/2018/12/PI_2018.12.10_future-of-ai_FINAL1.pdf.
  50. Rameau, M. (2018). IA et OGM : les deux révélateurs de notre rapport à la nature [Online]. Available at: https://www.europeanscientist.com/fr/opinion/ia-et-ogm-les-deux-revelateurs-de-notre-rapport-a-la-nature-premiere-partie/.
  51. RIETI Japan – Research Institute of Economy, Trade and Industry (2018). Trends and priority shifts in Artificial Intelligence technology invention: A global patent analysis [Online]. Available at: https://www.rieti.go.jp/jp/publications/dp/17e066.pdf.
  52. Rodrigues, J.J.P.C., Compte, S.S. and de la Torre Diez, I. (2016). e-Health Systems: Theory and Technical Applications. ISTE Press, London and Elsevier, Oxford.
  53. Royal Society (2017). Machine learning: The power and promise of computers that learn by example [Online]. Available at: https://royalsociety.org/~/media/policy/projects/machine-Learning/publications/machine-Learning-report.pdf.
  54. Royal Society (2018). How we talk about AI, and why it matters: Emerging debates at the International Conference for Machine Learning 2018 [Online]. Available at: http://blogs.royalsociety.org/in-verba/2018/08/13/how-we-talk-about-ai-and-why-it-matters-emerging-debates-at-the-international-conference-for-machine-Learning-2018/.
  55. Ruggieri, G. and Briante, O. (2016). A framework for IoT and e-health systems integration based on the social Internet of Things paradigm. In 2017 International Symposium on Wireless Communication Systems (ISWCS) Proceedings. Bologna, 426–431.
  56. SAS (2018). The evolution of analytics – Opportunities and challenges for machine learning in business [Online]. Available at: https://www.sas.com/en_ca/campaign/analytics/evolution-of-analytics-108240/download.html#formsuccess.
  57. SCER – Service canadien du renseignement de sécurité (2018). Perspectives sécuritaires 2018 – risques et menaces éventuels [Online]. Available at: https://www.csis-scrs.gc.ca/pblctns/ccsnlpprs/2016/2016-06-03/GLOBAL_SECURITY_POST-CONFERENCE_FRANCAIS.pdf.
  58. Serieyx, H. (2014). Le choc du réel. Eyrolles, Paris.
  59. SGDN – Secrétariat général de la défense nationale (2017). Étude prospective à l’horizon 2030 : impacts des transformations et ruptures technologiques sur notre environnement stratégique et de sécurité [Online]. Available at: http://www.sgdsn.gouv.fr/uploads/2017/04/sgdsn-document-prospectives-v5-bd.pdf.
  60. Simondon, G. (2012). Du mode d’existence des objets techniques. Aubier, Paris.
  61. Stengers, I. (2006). La vierge et le neutrino – les scientifiques dans la tourmente. Les Empêcheurs de penser en rond, Paris.
  62. Stiegler, B. (2016). Dans la disruption – comment ne pas devenir fou ? Les liens qui libèrent, Paris.
  63. Tan, E. (2018). Evolving nature of cyber conflict [Online]. Available at: http://www.rsis.edu.sg/wp-content/uploads/2018/10/CO18166.pdf.
  64. The Future Society (2018). A global civic debate on governing the rise of Artificial Intelligence [Online]. Available at: http://www.thefuturesociety.org/wp-content/uploads/2018/09/TFS_GCD_Report_21Sept.pdf.
  65. Topor, R. (2011). Mémoires d’un vieux con. Wombat, Paris.
  66. Trégouët, R. (2018). Que sera l’électronique de l’après silicium ? RTFash, 975, 18 November.
  67. Usine Nouvelle (2017a). La loi de Moore devrait se terminer en 2030 [Online]. Available at: https://www.usinenouvelle.com/article/la-loi-de-moore-devrait-se-terminer-en-2030.N521364.
  68. Usine Nouvelle (2017b). IBM présente un ordinateur quantique opérationnel de 50 qubits [Online]. Available at: https://www.usinenouvelle.com/editorial/ibm-presente-unordinateur-quantique-operationnel-de-50-qubits.N614003.
  69. Usine Nouvelle (2018). Une percée européenne dans l’ordinateur quantique en silicium [Online]. Available at: https://www.usinenouvelle.com/article/une-percee-europeenne-dans-l-ordinateur-quantique-en-silicium.N725734.
  70. Vervisch, G. (2019). Peut-on réussir sans effort, ni aucun talent ? Le Passeur, Paris.
  71. Villemin, G. (2018). Réseaux de neurones artificiels [Online]. Available at: http://villemin.gerard.free.fr/Wwwgvmm/Logique/IAneuron.htm.
  72. Wikipedia (2018a). Paradigme [Online]. Available at: https://fr.wikipedia.org/wiki/Paradigme.
  73. Wikipedia (2018b). Ontologie (informatique) [Online]. Available at: https://fr.wikipedia.org/wiki/Ontologie_(informatique).
  74. Wikipedia (2018c). Web sémantique [Online]. Available at: https://fr.wikipedia.org/wiki/Web_s%C3%A9mantique.

Appendix 3

  1. Aget, A. (2018). Les climatologues se sont trompés : la planète se réchauffe deux fois plus vite que prévu [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7940:les-climatologues-se-sont-trompes-la-planete-se-rechauffe-deux-fois-plus-vite-que-prevu&catid=174:climat-ressources&Itemid=827.
  2. Andami, K. (2017). L’encapsulage du génie humain en entreprise [Online]. Available at: http://www.mauvaisenouvelle.fr/?article=monde-lencapsulage-du-genie-humain-en-entreprise--1068.
  3. Boccara, N. (2010). Modeling Complex Systems. Springer, New York.
  4. Bos, C. (2019). Synthetic biology – Incredible opportunity or existential threat? [Online]. Available at: https://cleantechnica.com/2019/07/11/synthetic-biology-incredible-opportunity-or-existential-threat/?utm_source=CleanTechnica+News&utm_campaign=13a378a330-Daily+Email+CAMPAIGN&utm_medium=email&utm_term=0_b9b83ee7eb-13a378a330-331991893.
  5. Broadways, D. (2018). Urgence du vivant : ‘La bio-économie oblige les logiques libérales à se réformer’ [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7978:urgence-du-vivant-la-bioeconomie-oblige-les-logiques-liberales-a-se-reformer&catid=123:innovations-vertes&Itemid=2037.
  6. Brunel, S. (2008). À qui profite le développement durable ? Larousse, Paris.
  7. Burger, J. and Gochfeld, M. (2016). Initiating events, functional remediation, and assessment of risk to ecological resources. Ecological Indicators, 71, 32–40.
  8. Cioran, E.M. (1987). Aveux et Anathèmes. Gallimard, Paris.
  9. Clean Technology Trade Alliance (2018). [Online]. Clean Technology Trade Alliance. Available at: https://www.environmental-expert.com/companies/clean-technology-trade-alliance-34271.
  10. Da Lage, A., Amat, J.P., Frérot, A.M. Guichard-Anguis, S., Julien-Laferrière, B. and Wicherek, S.P. (2008). L’après développement durable : espace, nature, culture et qualité. Ellipses, Paris.
  11. De Lassus Saint Genies, G. (2015). La prise en compte des aspects économiques du défi climatique dans le régime juridique international du climat. PhD thesis, Université Laval/Université de Paris I, Quebec/Paris.
  12. Deloitte (2017). L’entreprise cinétique [Online]. Available at: https://www2.deloitte.com/fr/fr/pages/technology/articles/tech-trends-2017.html.
  13. Deublein, D. and Steinhauser, A. (2011). Biogas from Waste and Renewable Resources: An Introduction. Wiley-VCH, Weinheim.
  14. Dupin, L. (2018). Le cobalt et le lithium sont le pétrole du XXIe siècle… et il n’y a pas de quoi se réjouir [Online]. Available at: http://www.novethic.fr/actualite/energie/transition-energetique/isr-rse/decryptage-le-cobalt-et-le-lithium-sont-le-petrole-du-xxie-siecle-et-il-n-y-a-pas-de-quoi-se-rejouir-145546.html.
  15. Dutriaux, C. (2019). La théorie systémique, qu’est-ce que c’est ? [Online]. Available at: http://theconversation.com/la-theorie-systemique-quest-ce-que-cest-120940.
  16. Economist Intelligence Unit (2011). Frontiers of disruption: The next decade of technology in business [Online]. Available at: https://www.slideshare.net/Management-Thinking/frontiers-of-disruption-the-next-decade-of-technology-in-business.
  17. Fiksel, J. (2003). Designing resilient, sustainable systems. Environmental Science & Technology, 37, 5330–5339 [Online]. Available at: http://resilience.osu.edu/CFR-site/pdf/DesResSusSysFiksel.pdf.
  18. Foucart, J. (2011). Réseaux fluides et pratiques sociales ? Vers un nouveau paradigme. Une méthodologie floue ? La recherche participative. Pensée plurielle, 11–23 [Online]. Available at: http://www.cairn.info/revue-pensee-plurielle-2011-3-page-11.htm.
  19. Gençer, E., Miskin, C., Sun, X., Khan, M.R., Bermel, P., Ashraf Alam, M. and Agrawal, R. (2017). Directing solar photons to sustainably meet food, energy, and water needs. Scientific Reports, 7, 3133.
  20. Hunter, M.C., Smith, R.G., Schipanski, M.E. and Atwood, L. (2017). Agriculture in 2050: Recalibrating targets for sustainable intensification. Bioscience, 67, 386–391.
  21. IEA – International Energy Agency (2017). World energy outlook 2017 [Online]. Available at: https://www.iea.org/weo2017/.
  22. Inneray, D. (2008). Le futur et ses ennemis. Climats, Paris.
  23. INSEE – Institut national de la statistique et des études économiques (2019). Les investissements pour protéger l’environnement diminuent de nouveau en 2017 [Online]. Available at: https://insee.fr/fr/statistiques/4188106.
  24. Jackson, R.E. (2006). Contaminants in the subsurface: Source zone assessment and remediation: (Committee on Source Removal of Contaminants in the Subsurface of the National Research Council). Environmental and Engineering Geoscience, 12(3), 285–286.
  25. Jackson, T. (2010). Prospérité sans croissance – les fondations pour l’économie de demain. De Boeck, Brussels.
  26. Le Méhauté, A., Raynal, S., Chédru, M. and Pormente, S. (2007). L’acteur du projet ‘pour une économie de la connaissance’ : l’ingénieur ‘Entropologue’. La Revue des Sciences de Gestion, 4(226/227), 65–75.
  27. Le Treut, H. and Jancovici, J.M. (2004). L’effet de serre, allons-nous changer le climat ? Flammarion, Paris.
  28. Legrand, P. (2001). Des objets environnementaux à l’INRA et en général [Online]. Available at: http://www.intelligence-complexite.org/fileadmin/docs/39.pdf.
  29. Lepeltier, T. (2013). Histoire et philosophie des sciences. Sciences Humaines, Auxerre.
  30. Lozano, F.J., Lozano, R., Freire, P., Jiménez-Gonzalez, C., Sakao, T., Ortiz, M.G., Trianni, A., Carptenter, A. and Viveros, T. (2018). New perspectives for green and sustainable chemistry and engineering: Approaches from sustainable resource and energy use, management, and transformation. Journal of Cleaner Production, 172, 227–232.
  31. Martin, D. (2017). De ‘révolutions industrielles’, en mutations anthropologiques [Online]. Available at: https://www.agoravox.fr/tribune-libre/article/de-revolutions-industrielles-en-197985v.
  32. Matthews, E., Amann, C., Bringezu, S., Fischer-Kowalski, M., Hüttler, W., Kleijn, R., Moriguchi, Y., Ottke, C., Rodenburg, E., Rogich, D., Schandl, H., Schütz, H., van der Voet, E. and Weisz, H. (2000). The Weight of Nations: Material Outflows from Industrial Economies. World Resources Institute, Washington, DC [Online]. Available at: http://pdf.wri.org/weight_of_nations.pdf.
  33. McCarty, P.L., Bae, J. and Kim, J. (2011). Domestic wastewater treatment as a net energy producer – Can this be achieved? Environmental Science & Technology, 45, 7100–7106.
  34. Médiachime (2019). Ingénieur génie des procédés/Génie chimique [Online]. Available at: https://www.mediachimie.org/fichemetier/ing%C3%A9nieur-g%C3%A9nie-des-proc%C3%A9d%C3%A9s-g%C3%A9nie-chimique-hf.
  35. Miles, A. (2018). The science of Global Warming and the causes & prevention of climate change (Part 2) [Online]. Available at: https://cleantechnica.com/2018/02/04/science-global-warming-causes-prevention-climate-change-part-2/?utm_source=feedburner&utm_medium=feed&utm_campaign=Feed%3A+IM-cleantechnica+%28CleanTechnica%29.
  36. Ministry of Education and Research (2017). Quality culture in higher education. Report [Online]. Available at: https://www.regjeringen.no/contentassets/aee30e4b7d3241d5bd89db69fe38f7ba/en-gb/pdfs/stm201620170016000engpdfs.pdf.
  37. NAP – National Academies Press (2016). Protecting the health and well-being of communities in a changing climate: Proceedings of a workshop [Online]. Available at: http://www.nap.edu/24846.
  38. NAP – National Academies Press (2019). Environmental engineering for the 21st Century: Addressing grand challenges [Online]. Available at: http://nap.edu/25121.
  39. NASEM – National Academies of Sciences, Engineering, and Medicine (2017). Attribution of Extreme Weather in the Context of Climate Change. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/read/25121/chapter/9.
  40. NASEM – National Academies of Sciences, Engineering, and Medicine (2018a). Negative Emissions Technologies and Reliable Sequestration: A Research Agenda. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/catalog/25259/negative-emissions-technologies-and-reliable-sequestration-a-research-agenda.
  41. NASEM – National Academies of Sciences, Engineering, and Medicine (2018b). Improving Characterization of Anthropogenic Methane Emissions in the United States. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/catalog/24987/improving-characterization-of-anthropogenic-methane-emissions-in-the-united-states.
  42. Noorman, H.J. and Heijnen, J.J. (2017). Biochemical engineering’s grand adventure. Chemical Engineering Science, 170, 677–693.
  43. NRC – National Research Council (2005). Contaminants in the Subsurface: Source Zone Assessment and Remediation. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/catalog/11146/contaminants-in-the-subsurface-source-zone-assessment-and-remediation.
  44. NRC – National Research Council (2007). Environmental Impacts of Wind-energy Projects. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/catalog/11935/environmental-impacts-of-wind-energy-projects.
  45. NRC – National Research Council (2010). Electricity from Renewable Resources: Status, Prospects, and Impediments. The National Academies Press, Washington, DC [Online]. Available at: https://www.nap.edu/catalog/12619/electricity-from-renewable-resources-status-prospects-and-impediments.
  46. Perri, P. (2017). Nanotechnologies : le XXIe siècle sera-t-il le siècle des ingénieurs ? [Online]. Available at: http://www.atlantico.fr/decryptage/nanotechnologies-21e-siecle-sera-t-siecle-ingenieurs-pascal-perri-nanotechnologies-science-economie-3053748.html#hwByOugxVQ0MLvL0.99.
  47. Perrier, J.J. (2018). Le biosourcé, une valeur d’avenir ? Vers un contrat social ‘gagnant gagnant’ entre acteurs [Online]. Available at: http://www.up-magazine.info/index.php?option=com_content&view=article&id=7927:le-biosource-une-valeur-d-avenir-vers-un-contrat-social-gagnant-gagnant-entre-acteurs&catid=123:innovations-vertes&Itemid=2037.
  48. Phelps, E. (2013). Mass Flourishing: How Grassroots Innovation Created Jobs, Challenge, and Change. Princeton University Press, Princeton.
  49. Popper, K. (1972). Objective Knowledge; an Evolutionary Approach. Clarendon Press, Oxford.
  50. Redlingshofer, B., Métais, A. and André, J.-C. (2014). Complexité, risques incertains, précaution et débat public Environnement, risques & santé, 13, 222–31 [Online]. Available at: http://www.jle.com/download/ers-301893-complexite_risques_incertains_precaution_et_debat_public--Wq6MAn8AAQEAAFn7Yt0AAAAL-a.pdf.
  51. Roqueplo, P. (1997). Entre savoir et décision, l’expertise scientifique. INRA, Paris.
  52. Rueter, G. and Kuebler, M. (2017). China leading the way in solar energy expansion as renewables surge. Deutsche Welle [Online]. Available at: https://www.dw.com/en/china-leading-the-way-in-solar-energy-expansion-as-renewables-surge/a-39081117.
  53. Smith, A.L., Stadler, L.B., Cao, L., Love, N.G., Raskin, L. and Skerlos, S.J. (2014). Navigating wastewater energy recovery strategies: A life cycle comparison of anaerobic membrane bioreactor and conventional treatment systems with anaerobic digestion. Environmental Science & Technology, 48, 5972–5981.
  54. Sterman, J.D. (1994). Learning in and about complex systems. System Dynamics Review, 6, 291–330.
  55. Stubbe, R. (2018). Global clean-energy investments have slowed in 2018 [Online]. Available at: https://www.bloomberg.com/news/articles/2018-07-12/global-clean-energy-investments-have-slowed-in-2018.
  56. USDE – U.S. Department of Energy (2019). Advanced reactor technologies [Online]. Available at: https://www.energy.gov/ne/nuclear-reactor-technologies/advanced-reactor-technologies
  57. USEPA – U.S. Environmental Protection Agency (2016). Global methane initiative: Importance of methane [Online]. Available at: https://www.epa.gov/gmi/importance-methane.
  58. USEPA – U.S. Environmental Protection Agency (2018). National overview: Facts and figures on materials, wastes and recycling. trends – 1960 to today [Online]. Available at: https://www.epa.gov/facts-and-figures-about-materials-waste-and-recycling/national-overview-facts-and-figures-materials.
  59. USGCRP – U.S. Global Change Research Program (2017). Climate science special report: Fourth National Climate Assessment, Volume I [Online]. Available at: https://science2017.globalchange.gov/.
  60. Viveret, P. (2012). La cause humaine ; du bon usage de la fin du monde. Les liens qui libèrent, Paris.
  61. von Bertallanfy, L. (1968). La Théorie générale des systèmes. Dunod, Paris.
  62. von Hippel, E. and Tyre, M. (1995). How “learning by doing” is done: Problem identification in novel process equipment. Research Policy, 1–12 [Online]. Available at: https://evhippel.files.wordpress.com/2013/08/learning-by-doing-1995.pdf.
  63. WEF – World Economic Forum (2018). Future of digital economy and society system initiative – Internet of Things – Guidelines for sustainability [Online]. Available at: http://www3.weforum.org/docs/IoTGuidelinesforSustainability.pdf.
  64. WERF – Water Environment Research Foundation (2012). Barriers to biogas use for renewable energy [Online]. Available at: https://www.nyserda.ny.gov/-/media/Files/EERP/Commercial/Sector/Municipal-Water-Wastewater-Facilities/werf-biogas-barriers-report.pdf.
..................Content has been hidden....................

You can't read the all page of ebook, please click here login for view all page.
Reset