3. Aresta M, Quaranta E, Tommasi I, Giannoccaro P, Ciccarese A (1995) Enzymatic versus
chemical carbon dioxide utilization. Part I. The role of metal centres in carboxylation
reactions. Gazz Chim Ital 125(11):509–538
4. Helmenstine AM (2018) Heat of formation or standard enthalpy of formation table, thought
co. https://www.thoughtco.com/common-compound-heat-of-formation-table-609253
5. (a) Rotman D (2015) MIT Technol Rev https://www.technologyreview.com/s/425489/afuture-of-fossil-fuels/; (b) Abas N, Kalair A, Khan H (2015) Review of fossil fuels and future
energy technologies. Futures 69:31–49
6. (a) https://knoema.com/infographics/smsfgud/bp-world-reserves-of-fossil-fuels; (b) Aresta M,
Nocito F (2019) Large scale utilization of carbon dioxide: from its reaction with energy rich
chemicals to (Co)-processng with water to afford energy rich products. Opportunities and
barrers. In: Aresta M, Kawi S, Karimi IA (eds) An economy based on carbon dioxide and
water. Springer Publ. ISBN 978-3-030-15868-2, chapter 1
7. https://www.power-technology.com/comment/global-pv-capacity-expected-reach-969gw2025/
8. (a) Goto Y, Wang Q (2018) A particulate photocatalyst water-splitting panel for large-scale
solar hydrogen generation. Joule 2(3):509–520; (b) Pinaud BA, Benck JD, Seitz LC,
Forman AJ, Chen Z, Deutsch TG, James BD, Baum KN, Baum GN, Ardo S (2013) Technical
and economic feasibility of centralized facilities for solar hydrogen production via
photocatalysis and photoelectrochemistry. Energy Environ Sci 6(7):1983–2002
9. Aresta M, Dibenedetto A, Angelini A (2013) The changing paradigm in CO 2 utilization. J
CO 2 Util 3:65–73
10. Aresta M, Quaranta E (1997) Carbon dioxide: a substitute for phosgene. ChemTech 27(3):32–
40
11. https://www.uptodate.com/contents/carbon-monoxide-poisoning
12. Rupesh S, Muraleedharan C, Arun P (2016) Exergy and energy analyses of Syngas
production from different biomasses through air-steaming gasification. Front Energy 1–13
13. https://www.marketresearchfuture.com/reports/formic-acid-market-1132
14. Tanaka R, Yamashita M, Nozaki K (2009) Catalytic hydrogenation of carbon dioxide using Ir
(III)−pincer complexes. J Am Chem Soc 131(40):14168–9
15. Wesselbaum S, Hintermaier U, Leitner W (2012) Continuous-flow hydrogenation of carbon
dioxide to pure formic acid using an integrated scCO 2 process with immobilized catalyst and
base. Angew Chem Int Ed 51:8585–8588
16. Moret S, Dyson P, Laurenczy G (2014) Direct synthesis of formic acid from carbon dioxide
by hydrogenation in acidic media. Nat Commun 5:1–7
17. https://www.mordorintelligence.com/industry-reports/global-market-for-surfactants-industry
18. Liang Y-F, Steinbock R, Yang L, Ackermann L (2018) Continuous visible light-photo-flow
approach for manganese-catalyzed (Het)Arene C−H Arylation. Angew Chem Int 57:10625–
10629
19. (a) https://www.alliedmarketresearch.com/acrylic-acid-market; (b) Alvarez R, Carmona E,
Galindo A, Gutierrez E, Marin JM, Monge A, Poveda ML, Ruiz C, Savariault JM (1989)
Formation of carboxylate complexes from the reactions of CO 2 with ethylene complexes of
molybdenum and tungsten. X-ray and neutron diffraction studies. Organometallics 8
(10):2430–2439; (c) Aresta M, Pastore C, Giannoccaro P, Kovacs G, Dibenedetto A,
Papai I (2007) Evidence for spontaneous release of acrylates from a transition-metal complex
upon coupling ethene or propene with a carboxylic moiety or CO 2 . Chem Eur J 13(32):9028–
9034; (d) Lejkowski ML, Lindner R, Kageyama T, Bodizs GE, Plessow PN, Mueller IM,
Schaefer A, Rominger F, Hofmann P, Futter C, Schunck SA, Limbach M (2012) The first
catalytic synthesis of an acrylate from CO 2 and an alkene–a rational approach. Chem Eur J 18
(44):14017–14025; (e) Wang X, Wang H, Sun Y (2017) Synthesis of acrylic acid derivatives
from co 2 and ethylene. Chem 3:11–228; (f) Li Y, Liu Z, Cheng R, Liu B (2018) Mechanistic
aspects of acrylic acid formation from CO 2 –ethylene coupling over palladium—and nickel—
based catalysts. ChemCatChem 10(6):1420–1430
172
References
Précédent

- 181/263

Suivant