Aresta M, Dibenedetto A & Angelini A (2014) Catalysis for the valorization of exhaust carbon: from CO2 to chemicals, materials, and fuels. Technological use of CO2. Chem. Rev. 114, 1709–1742 (résumé)
Takeda H, Cometto C, Ishitani O & Robert M (2017) Electrons, photons, protons and Earth-abundant metal complexes for molecular catalysis of CO2 reduction. ACS Catal. 7, 70–88 (résumé)
AlOtaibi B, Fan S, Wang D, Ye J & Mi Z (2016) Wafer-level artificial photosynthesis forCO2 reduction into CH4 and CO using GaN nanowires. ACS Catal. 5, 5342–5348 (résumé)
Wang Y et al. (2016) Facile one-step synthesis of hybrid graphitic carbon nitride and carbon composites as high-performance catalysts for CO2 photocatalytic conversion. ACS Appl. Mater. Interf. 8, 17212–17219 (résumé)
Yu L et al. (2016) Enhanced activity and stability of carbon-decorated cuprous oxide mesoporous nanorods for CO2 reduction in artificial photosynthesis. ACS Catal. 6, 6444–6454 (résumé)
Li, X., Yu, J., Jaroniec, M., & Chen, X. (2019). Cocatalysts for selective photoreduction of CO2 into solar fuels. Chemical reviews, 119(6), 3962-4179. (résumé)
(en) C. Langdon et M.J. Atkinson, « Effect of elevated pCO2 on photosynthesis and calcification of corals and interactions with seasonal change in temperature/irradiance and nutrient enrichment », Journal of Geophysical Research, vol. 110, , C09S07 (DOI10.1029/2004JC002576, lire en ligne)
(en) CO2.earth Concentration de CO2 dans l'atmosphère terrestre.
csst.qc.ca
reptox.csst.qc.ca
« Dioxyde de carbone » dans la base de données de produits chimiques Reptox de la CSST (organisme québécois responsable de la sécurité et de la santé au travail), consulté le 25 avril 2009
dguv.de
gestis.dguv.de
Entrée du numéro CAS « 124-38-9 » dans la base de données de produits chimiques GESTIS de la IFA (organisme allemand responsable de la sécurité et de la santé au travail) (allemand, anglais), accès le 6 décembre 2008 (JavaScript nécessaire)
(en) H.D. Roller Duane, « Thilorier and the First Solidification of a Permanent Gas (1835) », Isis, vol. 43, no 2, , p. 109–113 (ISSN0021-1753, DOI10.1086/349402)
(en) Colin Finn, Sorcha Schnittger, Lesley J. Yellowlees et Jason B. Love, « Molecular approaches to the electrochemical reduction of carbon dioxide », Chemical Communications, vol. 48, no 10, , p. 1392-1399 (ISSN1359-7345, PMID22116300, DOI10.1039/c1cc15393e).
Cyrille Costentin, Samuel Drouet, Marc Robert et Jean-Michel Savéant, « A Local Proton Source Enhances CO2 Electroreduction to CO by a Molecular Fe Catalyst », Science, vol. 338, no 6103, , p. 90–94 (DOI10.1126/science.1224581, lire en ligne, consulté le )
(en) Marta Meneghello, Christophe Léger et Vincent Fourmond, « Electrochemical studies of CO2‐reducing metalloenzymes », Chemistry – A European Journal, , chem.202102702 (ISSN0947-6539 et 1521-3765, DOI10.1002/chem.202102702, lire en ligne, consulté le )
(en) Nowak R.S., Ellsworth D.S. et Smith S.D. (2004), Functional responses of plants to elevated atmospheric CO2 – do photosynthetic and productivity data from FACE experiments support early predictions?, New Phytol., 162, 253–280 (résumé)
(en) Bärbel Hönisch, Andy Ridgwe, Daniela N. Schmidt, Ellen Thomas, Samantha J. Gibbs, Appy Sluijs, Richard Zeebe, Lee Kump, Rowan C. Martindale, Sarah E. Greene, Wolfgang Kiessling, Justin Ries, James C. Zachos, Dana L. Royer, Stephen Barker, Thomas M. Marchitto Jr., Ryan Moyer, Carles Pelejero, Patrizia Ziveri, Gavin L. Foster et Branwen Williams, « The Geological Record of Ocean Acidification », Science, vol. 335, no 6072, , p. 1058-1063 (DOI10.1126/science.1208277, lire en ligne)
(en) C. Langdon et M.J. Atkinson, « Effect of elevated pCO2 on photosynthesis and calcification of corals and interactions with seasonal change in temperature/irradiance and nutrient enrichment », Journal of Geophysical Research, vol. 110, , C09S07 (DOI10.1029/2004JC002576, lire en ligne)
(en) Katharina E. Fabricius, Chris Langdon, Sven Uthicke, Craig Humphrey, Sam Noonan, Glenn De’ath, Remy Okazaki, Nancy Muehllehner, Martin S. Glas et Janice M. Lough, « Losers and winners in coral reefs acclimatized to elevated carbon dioxide concentrations », Nature Climate Change, vol. 1, , p. 165-169 (DOI10.1038/nclimate1122, lire en ligne)
(en) Stephanie C. Talmage et Christopher J. Gobler, « Effects of past, present, and future ocean carbon dioxide concentrations on the growth and survival of larval shellfish », PNAS, vol. 107, (DOI10.1073/pnas.0913804107, lire en ligne)
Sebastian Leuzinger et Christian Korner, « Rainfall distribution is the main driver of runoff under future CO2-concentration in a temperate deciduous forest », Glob. Change Biol., vol. 16, , p. 246–254 (résumé)
Reich P.B. et Hobbie S.E. (2013), Decade-long soil nitrogen constraint on the CO2 fertilization of plant biomass, Nature Clim. Change, 3, 278–282 (résumé)
Mark J. Hovenden, Paul C.D. Newton et Karen E. Wills, « Seasonal not annual rainfall determines grassland biomass response to carbon dioxide », Nature, vol. 511, (DOI10.1038/nature13281, résumé)
(en) Leakey A. et al. (2009), Elevated CO2 effects on plant carbon, nitrogen, and water relations: six important lessons from FACE, J. Exp. Bot., 60, 2859–2876 (résumé)
P.B. Reich, B.A. Hungate et Y. Luo, « Carbon-nitrogen interactions in terrestrial ecosystems in response to rising atmospheric carbon dioxide », Annu. Rev. Ecol. Evol. Syst., vol. 37, , p. 611–636 (résumé)
(en) Dukes J.S. et al. (2005), Responses of grassland production to single and multiple global environmental changes, PLoS Biol., 3, 1829–1837 (résumé
Grunzweig J.M. et Korner C. (2001), Growth, water and nitrogen relations in grassland model ecosystems of the semi-arid Negev of Israel exposed to elevated CO2, Oecologia, 128, 251–262 (résumé)
(en) Marissink M., Pettersson R. et Sindhoj E. (2002), Above-ground plant production under elevated carbon dioxide in a Swedish semi-natural grassland, Agric. Ecosyst. Environ., 93, 107–120 (résumé)
(en) Piao S. et al. (2013), Evaluation of terrestrial carbon cycle models for their response to climate variability and to CO2 trends, Glob. Change Biol., 19, 2117–2132 (résumé)
(en) De Kauwe M.G. et al. (2013), Forest water use and water use efficiency at elevated CO2: a model-data intercomparison at two contrasting temperate forest FACE sites, Glob. Change Biol., 19, 1759–1779 (résumé)
doi.org
(en) Ebi KL, Ziska LH (2018) Increases in atmospheric carbon dioxide: Anticipated negative effects on food quality. PLoS Med 15(7): e1002600. https://doi.org/10.1371/journal.pmed.1002600 ; Étude publiée sous licence Creative Commons CC0 public domain
(en) H.D. Roller Duane, « Thilorier and the First Solidification of a Permanent Gas (1835) », Isis, vol. 43, no 2, , p. 109–113 (ISSN0021-1753, DOI10.1086/349402)
(en) Colin Finn, Sorcha Schnittger, Lesley J. Yellowlees et Jason B. Love, « Molecular approaches to the electrochemical reduction of carbon dioxide », Chemical Communications, vol. 48, no 10, , p. 1392-1399 (ISSN1359-7345, PMID22116300, DOI10.1039/c1cc15393e).
(en) Marta Meneghello, Christophe Léger et Vincent Fourmond, « Electrochemical studies of CO2‐reducing metalloenzymes », Chemistry – A European Journal, , chem.202102702 (ISSN0947-6539 et 1521-3765, DOI10.1002/chem.202102702, lire en ligne, consulté le )
(en) « The reaction network in propane oxidation over phase-pure MoVTeNb M1 oxide catalysts », Journal of Catalysis, vol. 311, , p. 369-385 (lire en ligne)
(en) « Surface chemistry of phase-pure M1 MoVTeNb oxide during operation in selective oxidation of propane to acrylic acid », Journal of Catalysis, vol. 285, , p. 48-60 (lire en ligne)
(en) Kinetic studies of propane oxidation on Mo and V based mixed oxide catalysts, (lire en ligne)
(en) Katharina E. Fabricius, Chris Langdon, Sven Uthicke, Craig Humphrey, Sam Noonan, Glenn De’ath, Remy Okazaki, Nancy Muehllehner, Martin S. Glas et Janice M. Lough, « Losers and winners in coral reefs acclimatized to elevated carbon dioxide concentrations », Nature Climate Change, vol. 1, , p. 165-169 (DOI10.1038/nclimate1122, lire en ligne)
Mark J. Hovenden, Paul C.D. Newton et Karen E. Wills, « Seasonal not annual rainfall determines grassland biomass response to carbon dioxide », Nature, vol. 511, (DOI10.1038/nature13281, résumé)
Sokolov A.P. et al. (2008), Consequences of considering carbon-nitrogen interactions on the feedbacks between climate and the terrestrial carbon cycle, J. Clim., 21, 3776–3796 (résumé et biblio).
Morgan J. et al. (2011), C4 grasses prosper as carbon dioxide eliminates desiccation in warmed semi-arid grassland, Nature, 476, 202–205 (résumé)
P.B. Reich, S.E. Hobbie, T. Lee et al., « Nitrogen limitation constrains sustainability of ecosystem response to CO2 », Nature, vol. 440, , p. 922–925 (résumé)
Shen, J. et al. (2015) Electrocatalytic reduction of carbon dioxide to carbon monoxide and methane at an immobilized cobalt protoporphyrin. Nat. Commun. 6, 8177 |URL:https://www.nature.com/articles/ncomms9177
Heng Rao, Luciana C. Schmidt, Julien Bonin & Marc Robert (2018) « Visible-light-driven methane formation from CO2 with a molecular iron catalyst » ; Letter | 17 July 2017 Nature volume 548, pages 74–77 (03 aout 2017) | URL : https://www.nature.com/articles/nature23016#ref2
Andrei V, Reuillard B & Reisner E (2019) Bias-free solar syngas production by integrating a molecular cobalt catalyst with perovskite–BiVO 4 tandems. Nature materials, 1-6 (résumé)
nih.gov
ncbi.nlm.nih.gov
(en) Colin Finn, Sorcha Schnittger, Lesley J. Yellowlees et Jason B. Love, « Molecular approaches to the electrochemical reduction of carbon dioxide », Chemical Communications, vol. 48, no 10, , p. 1392-1399 (ISSN1359-7345, PMID22116300, DOI10.1039/c1cc15393e).
(en) Myers SS, Zanobetti A, Kloog I, Huybers P, Leakey AD, Bloom AJ, et al. (2014), Increasing CO2 threatens human nutrition. Nature. Jun;510(7503):139. PMID24805231
(en) Stephanie C. Talmage et Christopher J. Gobler, « Effects of past, present, and future ocean carbon dioxide concentrations on the growth and survival of larval shellfish », PNAS, vol. 107, (DOI10.1073/pnas.0913804107, lire en ligne)
(en) « Multifunctionality of Crystalline MoV(TeNb) M1 Oxide Catalysts in Selective Oxidation of Propane and Benzyl Alcohol 3(6), », ACS Catalysis, vol. 3, no 6, , p. 1103-1113 (lire en ligne)
(en) Chatzidiakou, L., Mumovic, D., & Summerfield, A. (2015). Is CO2 a good proxy for indoor air quality in classrooms? Part 1: The interrelationships between thermal conditions, CO2 levels, ventilation rates and selected indoor pollutants. Building Services Engineering Research and Technology, 36(2), 129-161 (résumé).
science.org
Cyrille Costentin, Samuel Drouet, Marc Robert et Jean-Michel Savéant, « A Local Proton Source Enhances CO2 Electroreduction to CO by a Molecular Fe Catalyst », Science, vol. 338, no 6103, , p. 90–94 (DOI10.1126/science.1224581, lire en ligne, consulté le )
Jhong H-R.M, Ma S & Kenis P.J.A. (2013) Electrochemical conversion of CO2 to useful chemicals: current status, remaining challenges, and future opportunities. Curr. Opin. Chem. Eng. 2, 191–199 (résumé)
(en) Bärbel Hönisch, Andy Ridgwe, Daniela N. Schmidt, Ellen Thomas, Samantha J. Gibbs, Appy Sluijs, Richard Zeebe, Lee Kump, Rowan C. Martindale, Sarah E. Greene, Wolfgang Kiessling, Justin Ries, James C. Zachos, Dana L. Royer, Stephen Barker, Thomas M. Marchitto Jr., Ryan Moyer, Carles Pelejero, Patrizia Ziveri, Gavin L. Foster et Branwen Williams, « The Geological Record of Ocean Acidification », Science, vol. 335, no 6072, , p. 1058-1063 (DOI10.1126/science.1208277, lire en ligne)
(en) T. Uchida (dir.), S. Mae (dir.), J. Kawabata et T. Hondoh, « Physical Data of CO2 Hydrate », dans Direct Ocean Disposal of Carbon Dioxide, Terra Scientific Publishing Company (TERRAPUB), , 45-61 p. (lire en ligne).
J.A. Morgan, D.E. Pataki, C. Körner et al., « Water relations in grassland and desert ecosystems exposed to elevated atmospheric CO2 », Oecologia, vol. 140, , p. 11–25 (lire en ligne [PDF])
(en) Singh D., Tsiang M., Rajaratnam B. et Diffenbaugh N.S. (2013), Precipitation extremes over the continental United States in a transient, high-resolution, ensemble climate model experiment, J. Geophys. Res., D 118, 7063–7086 (résumé)
(en) Marta Meneghello, Christophe Léger et Vincent Fourmond, « Electrochemical studies of CO2‐reducing metalloenzymes », Chemistry – A European Journal, , chem.202102702 (ISSN0947-6539 et 1521-3765, DOI10.1002/chem.202102702, lire en ligne, consulté le )
Liu X, Inagaki S & Gong J (2016) Heterogeneous molecular systems for photocatalytic CO2 reduction with water oxidation. Angew. Chem. Int. Ed. 55, 14924–14950 (résumé)