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Light-Promoted Hydrogenation of Carbon Dioxide¿An Overview

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Light-Promoted Hydrogenation of Carbon Dioxide¿An Overview

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dc.contributor.author Puga Vaca, Alberto es_ES
dc.date.accessioned 2017-09-04T12:23:54Z
dc.date.available 2017-09-04T12:23:54Z
dc.date.issued 2016-09
dc.identifier.issn 1022-5528
dc.identifier.uri http://hdl.handle.net/10251/86337
dc.description.abstract [EN] Hydrogenation of carbon dioxide is considered as a viable strategy to generate fuels while closing the carbon cycle (heavily disrupted by the abuse in the exploitation of fossil resources) and reducing greenhouse gas emissions. The process can be performed by heat-powered catalytic processes, albeit conversion and selectivity tend to be reduced at increasing temperatures owing to thermodynamic constraints. Recent investigations, as summarised in this overview, have proven that light activation is a distinct possibility for the promotion of CO2 hydrogenation to fuels. This effect is particularly beneficial in methanation processes, which can be enhanced under simulated solar irradiation using materials based on metallic nanoparticles as catalysts. The use of nickel, ruthenium and rhodium has led to substantial efficiencies. Light-promoted processes entail performances on a par with (or even superior to) those of thermally-induced, industrially-relevant, commercial technologies. es_ES
dc.description.sponsorship The author thanks the Spanish Government (Ministerio de Economía y Competitividad, MINECO) for financial support via a project for young researchers (CTQ2015-74138-JIN), and the ‘‘Severo Ochoa’’ programme (SEV 2012-0267). The European Union is also acknowledged for the SynCatMatch project (ERCAdG-2014-671093)
dc.language Inglés es_ES
dc.publisher Springer Verlag (Germany) es_ES
dc.relation.ispartof Topics in Catalysis es_ES
dc.rights Reserva de todos los derechos es_ES
dc.subject Carbon dioxide es_ES
dc.subject Solar fuels es_ES
dc.subject Photocatalysis es_ES
dc.subject Photothermal effect es_ES
dc.subject Methanol es_ES
dc.subject Methane es_ES
dc.subject.classification QUIMICA ANALITICA es_ES
dc.title Light-Promoted Hydrogenation of Carbon Dioxide¿An Overview es_ES
dc.type Artículo es_ES
dc.type Comunicación en congreso
dc.identifier.doi 10.1007/s11244-016-0658-z
dc.relation.projectID info:eu-repo/grantAgreement/EC/H2020/671093/EU/MATching zeolite SYNthesis with CATalytic activity/
dc.relation.projectID info:eu-repo/grantAgreement/MINECO//CTQ2015-74138-JIN/ES/PRODUCCION FOTOCATALITICA DE HIDROGENO MEDIANTE ENERGIA SOLAR A PARTIR DE BIOMASA O DE AGUAS RESIDUALES/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/MINECO//SEV-2012-0267/ es_ES
dc.rights.accessRights Abierto es_ES
dc.contributor.affiliation Universitat Politècnica de València. Instituto Universitario Mixto de Tecnología Química - Institut Universitari Mixt de Tecnologia Química es_ES
dc.description.bibliographicCitation Puga Vaca, A. (2016). Light-Promoted Hydrogenation of Carbon Dioxide¿An Overview. Topics in Catalysis. 59(15-16):1268-1278. https://doi.org/10.1007/s11244-016-0658-z es_ES
dc.description.accrualMethod S es_ES
dc.relation.conferencename 12th European Congress on Catalysis - Catalysis - Balancing the Use of Fossil and Renewable Resources
dc.relation.conferencedate August 30-September 04, 2015
dc.relation.conferenceplace Kazan, Rusia
dc.relation.publisherversion http://doi.org/10.1007/s11244-016-0658-z es_ES
dc.description.upvformatpinicio 1268 es_ES
dc.description.upvformatpfin 1278 es_ES
dc.type.version info:eu-repo/semantics/publishedVersion es_ES
dc.description.volume 59 es_ES
dc.description.issue 15-16 es_ES
dc.relation.senia 317865 es_ES
dc.identifier.eissn 1572-9028
dc.contributor.funder Ministerio de Economía y Competitividad
dc.contributor.funder European Commission
dc.description.references Centi G, Perathoner S (2009) Opportunities and prospects in the chemical recycling of carbon dioxide to fuels. Catal Today 148:191–205 es_ES
dc.description.references 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 es_ES
dc.description.references Centi G, Quadrelli EA, Perathoner S (2013) Catalysis for CO2 conversion: a key technology for rapid introduction of renewable energy in the value chain of chemical industries. Energy Environ Sci 6:1711–1731 es_ES
dc.description.references Wang W, Wang S, Ma X, Gong J (2011) Recent advances in catalytic hydrogenation of carbon dioxide. Chem Soc Rev 40:3703–3727 es_ES
dc.description.references Gao J, Liu Q, Gu F, Liu B, Zhong Z, Su F (2015) Recent advances in methanation catalysts for the production of synthetic natural gas. RSC Adv 5:22759–22776 es_ES
dc.description.references Armaroli N, Balzani V (2011) The hydrogen issue. ChemSusChem 4:21–36 es_ES
dc.description.references Gao J, Wang Y, Ping Y, Hu D, Xu G, Gu F, Su F (2012) A thermodynamic analysis of methanation reactions of carbon oxides for the production of synthetic natural gas. RSC Adv 2:2358–2368 es_ES
dc.description.references Jadhav SG, Vaidya PD, Bhanage BM, Joshi JB (2014) Catalytic carbon dioxide hydrogenation to methanol: a review of recent studies. Chem Eng Res Des 92:2557–2567 es_ES
dc.description.references de Richter RK, Ming T, Caillol S (2013) Fighting global warming by photocatalytic reduction of CO2 using giant photocatalytic reactors. Renew Sust Energ Rev 19:82–106 es_ES
dc.description.references Schach M-O, Schneider R, Schramm H, Repke J-U (2010) Techno-economic analysis of postcombustion processes for the capture of carbon dioxide from power plant flue gas. Ind Eng Chem Res 49:2363–2370 es_ES
dc.description.references Centi G, Perathoner S (2010) Towards solar fuels from water and CO2. ChemSusChem 3:195–208 es_ES
dc.description.references Corma A, Garcia H (2013) Photocatalytic reduction of CO2 for fuel production: possibilities and challenges. J Catal 308:168–175 es_ES
dc.description.references Izumi Y (2013) Recent advances in the photocatalytic conversion of carbon dioxide to fuels with water and/or hydrogen using solar energy and beyond. Coord Chem Rev 257:171–186 es_ES
dc.description.references Dhakshinamoorthy A, Navalon S, Corma A, Garcia H (2012) Photocatalytic CO2 reduction by TiO2 and related titanium containing solids. Energy Environ Sci 5:9217–9233 es_ES
dc.description.references Indrakanti VP, Kubicki JD, Schobert HH (2009) Photoinduced activation of CO2 on Ti-based heterogeneous catalysts: current state, chemical physics-based insights and outlook. Energy Environ Sci 2:745–758 es_ES
dc.description.references Ozin GA (2015) You can’t have an energy revolution without transforming advances in materials, chemistry and catalysis into policy change and action. Energy Environ Sci 8:1682–1684 es_ES
dc.description.references Ozin GA (2015) Throwing new light on the reduction of CO2. Adv Mater 27:1957–1963 es_ES
dc.description.references Abe T, Tanizawa M, Watanabe K, Taguchi A (2009) CO2 methanation property of Ru nanoparticle-loaded TiO2 prepared by a polygonal barrel-sputtering method. Energy Environ Sci 2:315–321 es_ES
dc.description.references Li Y, Lu G, Ma J (2014) Highly active and stable nano NiO-MgO catalyst encapsulated by silica with a core-shell structure for CO2 methanation. RSC Adv 4:17420–17428 es_ES
dc.description.references Garbarino G, Bellotti D, Riani P, Magistri L, Busca G (2015) Methanation of carbon dioxide on Ru/Al2O3 and Ni/Al2O3 catalysts at atmospheric pressure: catalysts activation, behaviour and stability. Int J Hydrogen Energy 40:9171–9182 es_ES
dc.description.references Carenco S, Wu C-H, Shavorskiy A, Alayoglu S, Somorjai GA, Bluhm H, Salmeron M (2015) Synthesis and structural evolution of nickel-cobalt nanoparticles under H2 and CO2. Small 11:3045–3053 es_ES
dc.description.references Sharafutdinov I, Elkjaer CF, de Carvalho HWP, Gardini D, Chiarello GL, Damsgaard CD, Wagner JB, Grunwaldt J-D, Dahl S, Chorkendorff I (2014) Intermetallic compounds of Ni and Ga as catalysts for the synthesis of methanol. J Catal 320:77–88 es_ES
dc.description.references Studt F, Sharafutdinov I, Abild-Pedersen F, Elkjaer CF, Hummelshøj JS, Dahl S, Chorkendorff I, Nørskov JK (2014) Discovery of a Ni-Ga catalyst for carbon dioxide reduction to methanol. Nat Chem 6:320–324 es_ES
dc.description.references Garbarino G, Riani P, Magistri L, Busca G (2014) A study of the methanation of carbon dioxide on Ni/Al2O3 catalysts at atmospheric pressure. Int J Hydrogen Energy 39:11557–11565 es_ES
dc.description.references Iablokov V, Beaumont SK, Alayoglu S, Pushkarev VV, Specht C, Gao J, Alivisatos AP, Kruse N, Somorjai GA (2012) Size-controlled model CO nanoparticle catalysts for CO2 hydrogenation: synthesis, characterization, and catalytic reactions. Nano Lett 12:3091–3096 es_ES
dc.description.references Behrens M, Studt F, Kasatkin I, Kühl S, Hävecker M, Abild-Pedersen F, Zander S, Girgsdies F, Kurr P, Kniep B-L, Tovar M, Fischer RW, Nørskov JK, Schlögl R (2012) The active site of methanol synthesis over Cu/ZnO/Al2O3 industrial catalysts. Science 336:893–897 es_ES
dc.description.references Graciani J, Mudiyanselage K, Xu F, Baber AE, Evans J, Senanayake SD, Stacchiola DJ, Liu P, Hrbek J, Fernández Sanz J, Rodriguez JA (2014) Highly active copper-ceria and copper-ceria-titania catalysts for methanol synthesis from CO2. Science 345:546–550 es_ES
dc.description.references Fiordaliso EM, Sharafutdinov I, Carvalho HWP, Grunwaldt J-D, Hansen TW, Chorkendorff I, Wagner JB, Damsgaard CD (2015) Intermetallic GaPd2 nanoparticles on SiO2 for low-pressure CO2 hydrogenation to methanol: catalytic performance and in situ characterization. ACS Catal 5:5827–5836 es_ES
dc.description.references Kohno Y, Tanaka T, Funabiki T, Yoshida S (1997) Photoreduction of carbon dioxide with hydrogen over ZrO2. Chem Commun 9:841–842 es_ES
dc.description.references Kohno Y, Tanaka T, Funabiki T, Yoshida S (2000) Photoreduction of CO2 with H2 over ZrO2. A study of interaction of hydrogen with photoexcited CO2. Phys Chem Chem Phys 2:2635–2639 es_ES
dc.description.references Kohno Y, Ishikawa H, Tanaka T, Funabiki T, Yoshida S (2001) Photoreduction of carbon dioxide by hydrogen over magnesium oxide. Phys Chem Chem Phys 3:1108–1113 es_ES
dc.description.references Teramura K, Tsuneoka H, Shishido T, Tanaka T (2008) Effect of H2 gas as a reductant on photoreduction of CO2 over a Ga2O3 photocatalyst. Chem Phys Lett 467:191–194 es_ES
dc.description.references Tsuneoka H, Teramura K, Shishido T, Tanaka T (2010) Adsorbed Species of CO2 and H2 on Ga2O3 for the Photocatalytic Reduction of CO2. J Phys Chem C 114:8892–8898 es_ES
dc.description.references Teramura K, S-i Okuoka, Tsuneoka H, Shishido T, Tanaka T (2010) Photocatalytic reduction of CO2 using H2 as reductant over ATaO3 photocatalysts (A = Li, Na, K). Appl Catal B 96:565–568 es_ES
dc.description.references Kohno Y, Hayashi H, Takenaka S, Tanaka T, Funabiki T, Yoshida S (1999) Photo-enhanced reduction of carbon dioxide with hydrogen over Rh/TiO2. J Photochem Photobiol A 126:117–123 es_ES
dc.description.references Lo C-C, Hung C-H, Yuan C-S, Wu J-F (2007) Photoreduction of carbon dioxide with H2 and H2O over TiO2 and ZrO2 in a circulated photocatalytic reactor. Sol Energy Mater Sol Cells 91:1765–1774 es_ES
dc.description.references Hoch LB, Wood TE, O’Brien PG, Liao K, Reyes LM, Mims CA, Ozin GA (2014) The rational design of a single-component photocatalyst for gas-phase CO2 reduction using both UV and visible light. Adv Sci 1:1400013 es_ES
dc.description.references Li M, Li P, Chang K, Wang T, Liu L, Kang Q, Ouyang S, Ye J (2015) Highly efficient and stable photocatalytic reduction of CO2 to CH4 over Ru loaded NaTaO3. Chem Commun 51:7645–7648 es_ES
dc.description.references Tahir M, Amin NS (2015) Photocatalytic CO2 reduction with H2 as reductant over copper and indium co-doped TiO2 nanocatalysts in a monolith photoreactor. Appl Catal A 493:90–102 es_ES
dc.description.references Tahir M, Amin NS (2016) Performance analysis of nanostructured NiO–In2O3/TiO2 catalyst for CO2 photoreduction with H2 in a monolith photoreactor. Chem Eng J 285:635–649 es_ES
dc.description.references Ahmed N, Shibata Y, Taniguchi T, Izumi Y (2011) Photocatalytic conversion of carbon dioxide into methanol using zinc-copper-M(III) (M = aluminum, gallium) layered double hydroxides. J Catal 279:123–135 es_ES
dc.description.references Ahmed N, Morikawa M, Izumi Y (2012) Photocatalytic conversion of carbon dioxide into methanol using optimized layered double hydroxide catalysts. Catal Today 185:263–269 es_ES
dc.description.references Yang C-C, Vernimmen J, Meynen V, Cool P, Mul G (2011) Mechanistic study of hydrocarbon formation in photocatalytic CO2 reduction over Ti-SBA-15. J Catal 284:1–8 es_ES
dc.description.references Thampi KR, Kiwi J, Grätzel M (1987) Methanation and photo-methanation of carbon-dioxide at room-temperature and atmospheric pressure. Nature 327:506–508 es_ES
dc.description.references O’Brien PG, Sandhel A, Wood TE, Jelle AA, Hoch LB, Perovic DD, Mims CA, Ozin GA (2014) Photomethanation of gaseous CO2 over RU/silicon nanowire catalysts with visible and near-infrared photons. Adv Sci 1:1400001 es_ES
dc.description.references Meng X, Wang T, Liu L, Ouyang S, Li P, Hu H, Kako T, Iwai H, Tanaka A, Ye J (2014) Photothermal conversion of CO2 into CH4 with H2 over group VIII nanocatalysts: an alternative approach for solar fuel production. Angew Chem Int Ed 53:11478–11482 es_ES
dc.description.references Sastre F, Puga AV, Liu L, Corma A, García H (2014) Complete photocatalytic reduction of CO2 to methane by H2 under solar light irradiation. J Am Chem Soc 136:6798–6801 es_ES
dc.description.references Hong J, Zhang W, Ren J, Xu R (2013) Photocatalytic reduction of CO2: a brief review on product analysis and systematic methods. Anal Methods 5:1086–1097 es_ES
dc.description.references Yang C-C, Yu Y-H, van der Linden B, Wu JCS, Mul G (2010) Artificial photosynthesis over crystalline TiO2-based catalysts: fact or fiction. J Am Chem Soc 132:8398–8406 es_ES
dc.description.references Kohno Y, Tanaka T, Funabiki T, Yoshida S (1998) Identification and reactivity of a surface intermediate in the photoreduction of CO2 with H2 over ZrO2. J Chem Soc Faraday Trans 94:1875–1880 es_ES
dc.description.references Teramura K, Tanaka T, Ishikawa H, Kohno Y, Funabiki T (2004) Photocatalytic reduction of CO2 to CO in the presence of H2 or CH4 as a reductant over MgO. J Phys Chem B 108:346–354 es_ES
dc.description.references Zhang H, Wang T, Wang J, Liu H, Dao TD, Li M, Liu G, Meng X, Chang K, Shi L, Nagao T, Ye J (2016) Surface-plasmon-enhanced photodriven CO2 reduction catalyzed by metal-organic-framework-derived iron nanoparticles encapsulated by ultrathin carbon layers. Adv Mater 28:3703–3710 es_ES
dc.description.references Morikawa M, Ahmed N, Yoshida Y, Izumi Y (2014) Photoconversion of carbon dioxide in zinc-copper-gallium layered double hydroxides: the kinetics to hydrogen carbonate and further to CO/methanol. Appl Catal B 144:561–569 es_ES
dc.description.references Sabatier P (1910) Making methane or mixtures of methane and hydrogen, US Pat. 956734 es_ES
dc.description.references Melsheimer J, Guo W, Ziegler D, Wesemann M, Schlögl R (1991) Methanation of carbon dioxide over Ru/Titania at room temperature: explorations for a photoassisted catalytic reaction. Catal Lett 11:157–168 es_ES
dc.description.references Lin X, Yang K, Si R, Chen X, Dai W, Fu X (2014) Photoassisted catalytic methanation of CO in H2-rich stream over Ru/TiO2. Appl Catal B 147:585–591 es_ES
dc.description.references Lin X, Lin L, Huang K, Chen X, Dai W, Fu X (2015) CO methanation promoted by UV irradiation over Ni/TiO2. Appl Catal B 168–169:416–422 es_ES
dc.description.references Sastre F, Oteri M, Corma A, García H (2013) Photocatalytic water gas shift using visible or simulated solar light for the efficient, room-temperature hydrogen generation. Energy Environ Sci 6:2211–2215 es_ES
dc.description.references Sastre F, Corma A, García H (2013) Visible-light photocatalytic conversion of carbon monoxide to methane by nickel(ii) oxide. Angew Chem Int Ed 52:12983–12987 es_ES
dc.description.references Zhao Y, Zhao B, Liu J, Chen G, Gao R, Yao S, Li M, Zhang Q, Gu L, Xie J, Wen X, Wu L-Z, Tung C-H, Ma D, Zhang T (2016) Oxide-modified nickel photocatalyst for the production of hydrocarbons in visible light. Angew. Chem. Int. Ed. 55:4215–4219 es_ES
dc.description.references Albero J, Garcia H, Corma A (2016) Temperature dependence of solar light assisted CO2 reduction on Ni based photocatalyst. Top Catal 59:787–791 es_ES


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