Solar Fuels by Heterogeneous Photocatalysis: From Understanding Chemical Bases to Process Development
Abstract
:1. Why Do We Need Renewable Energy? Prospects and Challenges in Solar Fuels Production
- to increase efficiency in energy production and consumption processes;
- to improve the ability to capture and sequester CO2 from the atmosphere and its utilisation;
- to decrease the carbon intensity of the economic system.
2. CO2 Photoreduction with Water
2.1. Proposed Reaction Pathways
- Reactants’ adsorption and photons absorption on the photocatalyst;
- Heterogeneously catalysed chemical reaction; and
- Products’ desorption.
2.2. Photoreactor Design
- high coverage area and homogeneous catalyst distribution with good exposure to light;
- high CO2 velocity and high mass transfer;
- intimate contact between reagents, catalyst and photons;
- efficient light harvesting.
3. Photoreforming of Biomass-Derived Substrates
3.1. Proposed Reaction Pathway
- Direct path, consuming the substrate directly by holes;
- Indirect path, a hydroxyl radical-mediated mechanism, where these radicals are produced by interaction of holes with adsorbed water or surface hydroxyl moiety.
3.2. Catalyst Formulation
3.3. Reaction Conditions
- Low light-scattering losses;
- Easier product recovery;
- Avoiding metal-leaching issues;
- Good catalyst exposure to light.
3.4. Photoreactors Design
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Demibras, A. Potential applications of renewable energy sources, biomass combustion problems in boiler power systems and combustion related environmental issues. Prog. Energy Combust. Sci. 2010, 31, 171–192. [Google Scholar]
- Murphy, D.J.; Hall, C.A.S. Year in review—EROI or energy return on (energy) invested. Ann. N. Y. Acad. Sci. 2010, 1185, 102–118. [Google Scholar] [CrossRef] [PubMed]
- Heede, R.; Oreskes, N. Potential emissions of CO2 and methane from proved reserves of fossil fuels: An alternative analysis. Glob. Environ. Chang. 2016, 36, 12–20. [Google Scholar] [CrossRef]
- Shaffiee, S.; Topal, E. When will fossil fuel reserves be diminished? Energy Policy 2009, 37, 181–190. [Google Scholar] [CrossRef]
- Scotchman, I.C. Shale gas and fracking: Exploration for unconventional hydrocarbons. Proc. Geol. Assoc. 2016, 127, 535–551. [Google Scholar] [CrossRef]
- Centner, T.J. Observations on risks, the social sciences, and unconventional hydrocarbons. Energy Res. Soc. Sci. 2016, 20, 1–7. [Google Scholar] [CrossRef]
- World Commission on Environment and Development. Our Common Future, 1st ed.; Oxford University Press: Oxford, UK, 1987; ISBN 019282080X. [Google Scholar]
- Clauser, C.; Ewert, M. The renewables cost challenge: Levelized cost of geothermal electric energy compared to other sources of primary energy—Review and case study. Renew. Sustain. Energy Rev. 2018, 82, 3683–3693. [Google Scholar] [CrossRef]
- Gaffney, S.G.; Marley, N.A. The impacts of combustion emissions on air quality and climate—From coal to biofuels and beyond. Atmos. Environ. 2009, 43, 23–26. [Google Scholar] [CrossRef]
- Garrabrants, A.C.; Kosson, D.S.; DeLapp, R.; van der Sloot, H.A. Effect of coal combustion fly ash use in concrete on the mass transport release of constituents of potential concern. Chemosphere 2014, 103, 131–139. [Google Scholar] [CrossRef] [PubMed]
- Peters, G.P.; Hertwich, E.G. Post-Kyoto greenhouse gas inventories: Production versus consumption. Clim. Chang. 2008, 86, 51–66. [Google Scholar] [CrossRef]
- Data from Global Monitory Division of US National Oceanic and Atmospheric Administration. Available online: https://www.esrl.noaa.gov/gmd/trends/monthly.html (accessed on 8 February 2018).
- Benhal, E.; Zahedi, G.; Shamsaei, E.; Bahadori, A. Global strategies and potentials to curb CO2 emissions in cement industry. J. Clean. Prod. 2013, 51, 142–161. [Google Scholar] [CrossRef]
- Figueres, C.; Schellnhuber, H.J.; Rockström, G.W.J.; Hobley, A.; Rahmstorf, S. Three years to safeguard our climate. Nature 2017, 546, 593–595. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Crutzen, P.J. Geology of mankind. Nature 2002, 415, 23. [Google Scholar] [CrossRef] [PubMed]
- Kyoto Protocol. Available online: http://www.unfccc.int (accessed on 10 February 2018).
- United Nations Framework Convention on Climate Change (UNFCCC). Adoption of the Paris Agreement. In Proceedings of the 21st Conference of the Parties, Paris, France, 30 November–11 December 2015. [Google Scholar]
- Arawaka, H.; Aresta, M.; Armor, J.N.; Barteau, M.A.; Beckman, E.J.; Bell, A.T.; Bercaw, J.E.; Creutz, C.; Dinjus, E.; Dixon, D.A.; et al. Catalysis Research of Relevance to Carbon Management: Progress, Challenges, and Opportunities. Chem. Rev. 2001, 101, 953–996. [Google Scholar] [CrossRef]
- McGlade, C.; Ekins, P. The geographical distribution of fossil fuels unused when limiting global warming to 2 °C. Nature 2015, 517, 187–190. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- MacFarlane, D.R.; Zhang, X.; Kar, M. Measure and control: Molecular management is a key to the Sustainocene! Green Chem. 2016, 18, 5689–5692. [Google Scholar] [CrossRef]
- Graves, C.; Ebbesen, S.D.; Morgensen, M.; Lackner, K.S. Sustainable hydrocarbon fuels by recycling CO2 and H2O with renewable or nuclear energy. Renew. Sustain. Energy Rev. 2011, 15, 1–23. [Google Scholar] [CrossRef]
- Schiemer, Q.; Tollefson, J.; Scully, T.; Witze, A.; Morton, O. Energy alternatives: Electricity without carbon. Nature 2008, 454, 816–823. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Da Silva Veras, T.; Simonato Mozer, T.; da Costa Rubim Messeder dos Santos, D.; da Silva Cesar, A. Hydrogen: Trends, production and characterization of the main process worldwide. Int. J. Hydrogen Econ. 2017, 42, 2018–2033. [Google Scholar] [CrossRef]
- Sharma, S.; Ghoshal, S.K. Hydrogen the future transportation fuel: From production to applications. Renew. Sustain. Energy Rev. 2015, 43, 1151–1158. [Google Scholar] [CrossRef]
- Olah, A.G.; Goeppert, A.; Surya Prakash, G.K. Beyond Oil and Gas: The Methanol Economy, 2nd ed.; Wiley-VCH Verlag GmbH & Co. KGaA: Weinheim, Germany, 2009; pp. 156–231. ISBN 978-3-527-32422-4. [Google Scholar]
- Antolini, E. Catalysts for direct ethanol fuel cells. J. Power Sources 2007, 170, 1–12. [Google Scholar] [CrossRef]
- Sharaf, O.Z.; Orhan, M.F. An overview of fuel cell technology: Fundamentals and applications. Renew. Sustain. Energy Rev. 2014, 32, 810–853. [Google Scholar] [CrossRef]
- Wang, J. Barriers of scaling-up fuel cells: Cost, durability and reliability. Energy 2015, 80, 509–521. [Google Scholar] [CrossRef]
- Mortensen, P.M.; Grunwaldt, J.-D.; Jensen, P.A.; Knudsen, K.G.; Jensen, A.D. A review of catalytic upgrading of bio-oils to engine fuels. Appl. Catal. A 2011, 407, 1–19. [Google Scholar] [CrossRef]
- Xu, C.; Arancon, R.A.D.; Labidid, J.; Luque, R. Lignin depolymerisation strategies: Towards valuable chemicals and fuels. Chem. Soc. Rev. 2014, 43, 7485–7500. [Google Scholar] [CrossRef] [PubMed]
- Yan, C.; Li, R.; Cui, C.; Liu, S.; Qiu, Q.; Ding, Y.; Wu, Y.; Zhang, B. Catalytic hydroprocessing of microalgae-derived biofuels: A review. Green Chem. 2016, 18, 3684–3699. [Google Scholar]
- Serrano-Ruiz, J.C.; Wang, D.; Dumesic, J.A. Catalytic upgrading of levulinic acid to 5-nonanone. Green Chem. 2010, 12, 574–577. [Google Scholar] [CrossRef]
- Armaroli, N.; Balzani, V. Energy for a Sustainable World, 1st ed.; Wiley-VCH Verlag GmbH & Co. KGaA: Weinheim, Germany, 2011; pp. 279–289. ISBN 978-3-527-32540-5. [Google Scholar]
- Gupta, R.B. Hydrogen Fuel: Production. In Transport and Storage, 1st ed.; CRC Press: Boca Raton, FL, USA, 2009; pp. 187–225. ISBN 978-1-4200-4575-8. [Google Scholar]
- Nichele, V.; Signoretto, M.; Menegazzo, F.; Gallo, A.; Dal Santo, V.; Cruciani, G.; Cerrato, G. Glycerol steam reforming for hydrogen production: Design of Ni supported catalysts. Appl. Catal. B 2012, 111–112, 225–232. [Google Scholar] [CrossRef]
- Tripodi, A.; Compagnoni, M.; Ramis, G.; Rossetti, I. Process simulation of hydrogen production by steam reforming of diluted bioethanol solutions: Effect of operating parameters on electrical and thermal cogeneration by using fuel cells. Int. J. Hydrogen Energy 2017, 42, 23776–23783. [Google Scholar] [CrossRef]
- Feng, D.; Zhao, Y.; Zhang, Y.; Zhang, Z.; Zhang, L.; Sun, S. In-situ steam reforming of biomass tar over sawdust biochar in mild catalytic temperature. Biomass Bioenergy 2017, 107, 261–270. [Google Scholar] [CrossRef]
- Guan, G.; Kaewpanha, M.; Hao, X.; Abudula, A. Catalytic steam reforming of biomass tar: Prospects and challenges. Renew. Sustain. Energy Rev. 2016, 58, 450–461. [Google Scholar] [CrossRef] [Green Version]
- Iulianelli, A.; Ribeirinha, P.; Mendes, A.; Basile, A. Methanol steam reforming for hydrogen generation via conventional and membrane reactors: A review. Renew. Sustain. Energy Rev. 2014, 29, 355–368. [Google Scholar] [CrossRef]
- Sims, R.E.H.; Mabee, W.; Saddler, J.N.; Taylor, M. An overview of second generation biofuel technologies. Biores. Technol. 2010, 101, 1570–1580. [Google Scholar] [CrossRef] [PubMed]
- Long, H.; Li, X.; Wang, H.; Jia, J. Biomass resources and their bioenergy potential estimation: A review. Renew. Sustain. Energy Rev. 2013, 26, 344–352. [Google Scholar] [CrossRef]
- Li, D.; Li, X.; Gong, J. Catalytic Reforming of Oxygenates: State of the Art and Future Prospects. Chem. Rev. 2016, 116, 11529–11653. [Google Scholar] [CrossRef] [PubMed]
- Haryanto, A.; Fernando, S.; Murali, N.; Adhikari, S. Current Status of Hydrogen Production Techniques by Steam Reforming of Ethanol: A Review. Energy Fuels 2005, 19, 2098–2106. [Google Scholar] [CrossRef]
- Trane, R.; Dahl, S.; Skjøth-Rasmussen, M.S.; Jensen, A.D. Catalytic steam reforming of bio-oil. Int. J. Hydrogen Energy 2012, 37, 6447–6472. [Google Scholar] [CrossRef]
- Holladay, J.D.; Hu, J.; King, D.L.; Wang, Y. An overview of hydrogen production technologies. Catal. Today 2009, 139, 244–260. [Google Scholar] [CrossRef]
- Puga, A.V. Photocatalytic production of hydrogen from biomass-derived feedstocks. Coord. Chem. Rev. 2016, 315, 1–66. [Google Scholar] [CrossRef]
- Kannann, N.; Vakeesan, D. Solar energy for future world: A review. Renew. Sustain. Energy Rev. 2016, 62, 1092–1105. [Google Scholar] [CrossRef]
- Jiang, Z.; Xiao, T.; Kuznetsov, V.; Edwards, P.P. Turning carbon dioxide into fuel. Philos. Trans. R. Soc. A 2010, 368, 3343–3364. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, W.; Gong, J. Methanation of carbon dioxide: An overview. Front. Chem. Sci. Eng. 2011, 5, 2–10. [Google Scholar]
- Beaumont, S.K.; Alayoglu, S.; Specht, C.; Michalak, W.D.; Pushkarev, V.V.; Guo, J.; Kruse, N.; Somorjai, G.A. Combining in Situ NEXAFS Spectroscopy and CO2 Methanation Kinetics To Study Pt and Co Nanoparticle Catalysts Reveals Key Insights into the Role of Platinum in Promoted Cobalt Catalysis. J. Am. Chem. Soc. 2017, 136, 9898–9901. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Younas, M.; Kong, L.L.; Bashir, M.J.K.; Nadeem, H.; Shehzad, A.; Sethupathu, S. Recent Advancements, Fundamental Challenges, and Opportunities in Catalytic Methanation of CO2. Energy Fuels 2016, 30, 8815–8831. [Google Scholar] [CrossRef]
- Rossetti, I.; Compagnoni, M.; Torli, M. Process simulation and optimisation of H2 production from ethanol steam reforming and its use in fuel cells. 1. Thermodynamic and kinetic analysis. Chem. Eng. J. 2015, 281, 1024–1035. [Google Scholar] [CrossRef]
- LeValley, T.L.; Richard, A.R.; Fan, M. The progress in water gas shift and steam reforming hydrogen production technologies—A review. Int. J. Hydrogen Energy 2014, 39, 16983–17000. [Google Scholar] [CrossRef]
- Frontera, P.; Macario, A.; Ferraro, M.; Antonucci, P.L. Supported Catalysts for CO2 Methanation: A Review. Catalysts 2017, 7, 59. [Google Scholar] [CrossRef]
- Wang, W.; Wang, S.; Ma, X.; Gong, J. Recent advances in catalytic hydrogenation of carbon dioxide. Chem. Soc. Rev. 2011, 40, 3703–3727. [Google Scholar] [CrossRef] [PubMed]
- Hermann, J.-M. Heterogeneous photocatalysis: State of the art and present applications. Top. Catal. 2005, 34, 49–65. [Google Scholar]
- Schneider, J.; Matsuoka, M.; Takeuchi, M.; Zhang, J.; Horiuchi, Y.; Anpo, M.; Bahnemann, D.W. Understanding TiO2 Photocatalysis: Mechanisms and Materials. Chem. Rev. 2014, 114, 9919–9986. [Google Scholar] [CrossRef] [PubMed]
- Nakata, K.; Fujishima, A. TiO2 photocatalysis: Design and applications. J. Photochem. Photobiol. C 2012, 13, 169–189. [Google Scholar] [CrossRef]
- Jones-Albertus, R.; Feldman, D.; Fu, R.; Horowitz, K.; Woodhouse, M. Technology advances needed for photovol taics toachieve widespread grid price parity. Prog. Photovolt. Res. Appl. 2016, 24, 1272–1283. [Google Scholar] [CrossRef]
- Haegel, N.M.; Margolis, R.; Buonassisi, T.; Feldman, D.; Froitzheim, A.; Garabedian, R.; Green, M.; Glunz, S.; Henning, H.-M.; Holder, B.; et al. Terawatt-scale photovoltaics: Trajectories and Challenges. Science 2017, 356, 141–143. [Google Scholar] [CrossRef] [PubMed]
- Lewis, N.S.; Nocera, D.G. Powering the planet: Chemical challenges in solar energy utilization. PNAS 2007, 103, 15729–15735. [Google Scholar] [CrossRef] [PubMed]
- Inoue, T.; Fujishima, A.; Konishi, S.; Honda, K. Photoelectrocatalytic reduction of carbon dioxide in aqueous suspensions of semiconductor powders. Nature 1979, 277, 637–638. [Google Scholar] [CrossRef]
- Aurian-Blajeni, B.; Halmann, M.; Manassen, J. Photoreduction of carbon dioxide and water into formaldehyde and methanol on semiconductor materials. Sol. Energy 1980, 25, 165–170. [Google Scholar] [CrossRef]
- Anpo, M.; Yamashita, H.; Ichihashi, Y.; Ehara, S. Photocatalytic reduction of CO2 with H2O on Ti-MCM-41 and Ti-MCM-48 mesoporous zeolite catalysts. J. Electroanal. Chem. 1995, 396, 21–26. [Google Scholar] [CrossRef]
- Diebold, U. The surface science of titanium dioxide. Surf. Sci. Rep. 2003, 48, 53–229. [Google Scholar] [CrossRef]
- Markovits, A.; Fahmi, A.; Minot, C. A theoretical study of CO2 adsorption on TiO2. J. Mol. Struct. 1996, 371, 219–235. [Google Scholar] [CrossRef]
- Michalkiewicz, B.; Majewska, J.; Kądziołka, G.; Bubacz, K.; Mozia, S.; Morawski, A.W. Reduction of CO2 by adsorption and reaction on surface of TiO2-nitrogen modified photocatalyst. J. CO2 Util. 2014, 5, 47–52. [Google Scholar] [CrossRef]
- Krischok, S.; Höfft, O.; Kempter, V. The chemisorption of H2O and CO2 on TiO2 surfaces: Studies with MIES and UPS (HeI/II). Surf. Sci. 2002, 507–510, 67–73. [Google Scholar] [CrossRef]
- Tan, L.L.; Ong, W.J.; Chai, S.P.; Mohamed, A.R. Photocatalytic reduction of CO2 with H2O over graphene oxide supported oxygen-rich TiO2 hybrid photocatalyst under visible light irradiation: Process and kinetic studies. Chem. Eng. J. 2017, 308, 248–255. [Google Scholar] [CrossRef]
- Henderson, M.A. Structural Sensitivity in the Dissociation of Water on TiO2 Single-Crystal Surfaces. Langmuir 1996, 12, 5093–5098. [Google Scholar] [CrossRef]
- Ketteler, G.; Yamamoto, S.; Bluhm, H.; Andersson, K.; Starr, D.E.; Ogletree, D.F.; Ogasawara, H.; Nilsson, A.; Salmeron, M. The Nature of Water Nucleation Sites on TiO2(110) Surfaces Revealed by Ambient Pressure X-ray Photoelectron Spectroscopy. J. Phys. Chem. C 2007, 111, 8278–8282. [Google Scholar] [CrossRef]
- Levchenko, A.A.; Li, G.; Boerio-Goates, J.; Woodfield, B.F.; Navrotsky, A. TiO2 Stability Landscape: Polymorphism, Surface Energy, and Bound Water Energetics. Chem. Mater. 2006, 18, 6324–6332. [Google Scholar] [CrossRef]
- He, H.Y.; Zapol, P.; Curtiss, L.A. Computational screening of dopants for photocatalytic two-electron reduction of CO2 on anatase (101) surfaces. Energy Environ. Sci. 2012, 5, 6196–6205. [Google Scholar] [CrossRef]
- Olivo, A.; Ghedini, E.; Pascalicchio, P.; Manzoli, M.; Cruciani, G.; Signoretto, M. Sustainable Carbon Dioxide Photoreduction by a Cooperative Effect of Reactor Design and Titania Metal Promotion. Catalysts 2018, 8, 41. [Google Scholar] [CrossRef]
- Jönsson, B.; Karlström, G.; Wennerström, H.; Forsén, S.; Ross, B.; Almlöf, J. Ab initio molecular orbital calculations on the water-carbon dioxide system. Reaction pathway for water + carbon dioxide carbonic acid. J. Am. Chem. Soc. 1977, 99, 4628–4632. [Google Scholar] [CrossRef]
- Nguyen, M.T.; Ha, T.-K. A theoretical study of the formation of carbonic acid from the hydration of carbon dioxide: A case of active solvent catalysis. J. Am. Chem. Soc. 1984, 106, 599–602. [Google Scholar] [CrossRef]
- Merz, K.M., Jr. Gas-phase and solution-phase potential energy surfaces for carbon dioxide + n-water (n = 1,2). J. Am. Chem. Soc. 1990, 112, 7973–7980. [Google Scholar] [CrossRef]
- Sakthivel, S.; Hidalgo, M.C.; Bahnemann, D.W.; Geissen, S.U.; Murugesan, V.; Vogelpohl, A. A fine route to tune the photocatalytic activity of TiO2. Appl. Catal. B Environ. 2006, 63, 31–40. [Google Scholar] [CrossRef]
- Malato, S.; Blanco, J.; Vidal, A.; Alarcòn, D.; Maldonado, M.I.; Càceres, J.; Gernjak, W. Applied studies in solar photocatalytic detoxification: An overview. Sol. Energy 2003, 75, 329–336. [Google Scholar] [CrossRef]
- Varghese, O.K.; Paulose, M.; LaTempa, T.J.; Grimes, C. High-Rate Solar Photocatalytic Conversion of CO2 and Water Vapor to Hydrocarbon Fuels. Nano Lett. 2009, 9, 731–737. [Google Scholar] [CrossRef] [PubMed]
- Wu, J.C.S.; Lin, H.M.; Lai, C.L. Photo reduction of CO2 to methanol using optical-fiber photoreactor. Appl. Catal. A Gen. 2005, 296, 194–200. [Google Scholar] [CrossRef]
- Ikeue, K.; Yamashita, H.; Anpo, M. Photocatalytic Reduction of CO2 with H2O on Ti−β Zeolite Photocatalysts: Effect of the Hydrophobic and Hydrophilic Properties. J. Phys. Chem. B 2001, 105, 8350–8355. [Google Scholar] [CrossRef]
- Vijayan, B.; Dimitrijevic, N.M.; Rajh, T.; Gray, K. Effect of Calcination Temperature on the Photocatalytic Reduction and Oxidation Processes of Hydrothermally Synthesized Titania Nanotubes. J. Phys. Chem. C 2010, 114, 12994–13002. [Google Scholar] [CrossRef]
- Woolerton, T.W.; Sheard, S.; Reisner, E.; Pierce, E.; Ragsdale, S.W.; Armstrong, F.A. Efficient and Clean Photoreduction of CO2 to CO by Enzyme-Modified TiO2 Nanoparticles Using Visible Light. J. Am. Chem. Soc. 2010, 132, 2132–2133. [Google Scholar] [CrossRef] [PubMed]
- Tahir, M.; Tahir, B.; Amin, N. Synergistic effect in plasmonic Au/Ag alloy NPs co-coated TiO2 NWs toward visible-light enhanced CO2 photoreduction to fuels. Appl. Catal. B Environ. 2017, 204, 548–560. [Google Scholar] [CrossRef]
- Olivo, A.; Trevisan, V.; Ghedini, E.; Pinna, F.; Bianchi, C.L.; Naldoni, A.; Cruciani, G.; Signoretto, M. CO2 photoreduction with water: Catalyst and process investigation. J. CO2 Util. 2015, 12, 86–94. [Google Scholar] [CrossRef]
- Rossetti, I.; Villa, A.; Compagnoni, M.; Prati, L.; Ramis, G.; Pirola, C.; Bianchi, C.L. CO2 photoconversion to fuels under high pressure: Effect of TiO2 phase and of unconventional reaction conditions. Catal. Sci. Technol. 2015, 5, 4481–4487. [Google Scholar] [CrossRef]
- Karamian, E.; Sharifnia, S. On the general mechanism of photocatalytic reduction of CO2. J. CO2 Util. 2016, 16, 194–203. [Google Scholar] [CrossRef]
- Liu, L.; Li, Y. Understanding the Reaction Mechanism of Photocatalytic Reduction of CO2 with H2O on TiO2-Based Photocatalysts: A Review. Aerosol Air Qual. Res. 2014, 14, 453–569. [Google Scholar] [CrossRef]
- Hermann, J.M. Heterogeneous photocatalysis: Fundamentals and applications to the removal of various types of aqueous pollutants. Catal. Today 1999, 53, 115–129. [Google Scholar] [CrossRef]
- Rasko, J.; Solymosi, F. Infrared Spectroscopic Study of the Photoinduced Activation of CO2 on TiO2 and Rh/TiO2 Catalysts. J. Phys. Chem. 1994, 98, 7147–7152. [Google Scholar] [CrossRef]
- Li, K.; An, X.; Park, K.H.; Khraisheh, M.; Tang, J. A critical review of CO2 photoconversion: Catalysts and reactors. Catal. Today 2014, 224, 3–12. [Google Scholar] [CrossRef]
- Singh, V.; Castellanos Beltran, I.J.; Casamada Ribot, J.; Nagpal, P. Photocatalysis Deconstructed: Design of a New Selective Catalyst for Artificial Photosynthesis. Nano Lett. 2014, 14, 597–603. [Google Scholar] [CrossRef] [PubMed]
- Olivo, A.; Ghedini, E.; Signoretto, M.; Compagnoni, M.; Rossetti, I. Liquid vs. Gas Phase CO2 Photoreduction Process: Which Is the Effect of the Reaction Medium? Energies 2017, 10, 1394. [Google Scholar] [CrossRef]
- Handoko, A.D.; Li, K.; Tang, J. Recent progress in artificial photosynthesis: CO2 photoreduction to valuable chemicals in a heterogeneous system. Curr. Opin. Chem. Eng. 2013, 2, 200–206. [Google Scholar] [CrossRef]
- Wang, W.-N.; An, W.-J.; Ramalingam, B.; Mukherjee, S.; Niedzwiedzki, D.M.; Gangopadhyay, S.; Biswas, P. Size and Structure Matter: Enhanced CO2 Photoreduction Efficiency by Size-Resolved Ultrafine Pt Nanoparticles on TiO2 Single Crystals. J. Am. Chem. Soc. 2012, 134, 11276–11281. [Google Scholar] [CrossRef] [PubMed]
- Dimitrijevic, N.M.; Vijayan, B.K.; Poluektov, O.G.; Raijh, T.; Gray, K.A.; He, H.; Zapol, P. Role of Water and Carbonates in Photocatalytic Transformation of CO2 to CH4 on Titania. J. Am. Chem. Soc. 2011, 133, 3964–3971. [Google Scholar] [CrossRef] [PubMed]
- Tanaka, T.; Kohno, Y.; Yoshida, S. Photoreduction of carbon dioxide by hydrogen and methane. Res. Chem. Intermed. 2000, 26, 93–101. [Google Scholar] [CrossRef]
- Teramura, K.; Tanaka, T.; Ishikawa, H.; Kohno, Y.; Funabiki, T. Photocatalytic Reduction of CO2 to CO in the Presence of H2 or CH4 as a Reductant over MgO. J. Phys. Chem. B 2004, 108, 346–354. [Google Scholar] [CrossRef]
- Baran, T.; Wojtyła, S.; Dibenedetto, A.; Aresta, M.; Macyk, W. Zinc sulfide functionalized with ruthenium nanoparticles for photocatalytic reduction of CO2. Appl. Catal. B Environ. 2015, 178, 170–176. [Google Scholar] [CrossRef]
- Kočí, K.; Obalová, L.; Matějová, L.; Plachá, D.; Lacný, Z.; Jirkovský, J.; Šolková, O. Effect of TiO2 particle size on the photocatalytic reduction of CO2. Appl. Catal. B Environ. 2009, 89, 494–502. [Google Scholar] [CrossRef]
- Galli, F.; Compagnoni, M.; Vitali, D.; Pirola, C.; Bianchi, C.L.; Villa, A.; Prati, L.; Rossetti, I. CO2 photoreduction at high pressure to both gas and liquid products over titanium dioxide. Appl. Catal. B Environ. 2017, 200, 386–391. [Google Scholar] [CrossRef]
- Ola, O.; Maroto-Valer, M. Role of catalyst carriers in CO2 photoreduction over nanocrystalline nickel loaded TiO2-based photocatalysts. J. Catal. 2014, 309, 300–308. [Google Scholar] [CrossRef]
- Marszewski, M.; Cao, S.; Yu, L.; Jaronec, M. Semiconductor-based photocatalytic CO2 conversion. Mater. Horiz. 2015, 2, 261–276. [Google Scholar] [CrossRef]
- Dimitrijevic, N.M.; Shkrob, I.A.; Gosztola, D.J.; Raji, T. Dynamics of Interfacial Charge Transfer to Formic Acid, Formaldehyde, and Methanol on the Surface of TiO2 Nanoparticles and Its Role in Methane Production. J. Phys. Chem. C 2012, 116, 878–885. [Google Scholar] [CrossRef]
- Clarizia, L.; Di Somma, I.; Onotri, L.; Andreozzi, R.; Marotta, R. Kinetic modeling of hydrogen generation over nano-Cu(s)/TiO2 catalyst through photoreforming of alcohols. Catal. Today 2017, 281, 117–123. [Google Scholar] [CrossRef]
- Matějová, L.; Šihor, M.; Lang, J.; Troppová, I.; Ambrožová, N.; Reli, M.; Brunátová, T.; Čapek, L.; Kotarba, A.; Kočí, K. Investigation of low Ce amount doped-TiO2 prepared by using pressurized fluids in photocatalytic N2O decomposition and CO2 reduction. J. Sol-Gel Sci. Technol. 2017, 84, 158–168. [Google Scholar] [CrossRef]
- Tan, S.; Zou, L.; Hu, E. Photocatalytic reduction of carbon dioxide into gaseous hydrocarbon using TiO2 pellets. Catal. Today 2006, 115, 269–273. [Google Scholar] [CrossRef]
- Bessekhouad, Y.; Robert, D.; Weber, J.-V. Photocatalytic activity of Cu2O/TiO2,Bi2O3/TiO2 and ZnMn2O4/TiO2 heterojunctions. Catal. Today 2005, 101, 315–321. [Google Scholar] [CrossRef]
- Kaneco, S.; Shimizu, Y.; Ohta, K.; Mizuno, T. Photocatalytic reduction of high pressure carbon dioxide using TiO2 powders with a positive hole scavenger. J. Photochem. Photobiol. A Chem. 1998, 115, 223. [Google Scholar] [CrossRef]
- Lee, W.H.; Liao, C.H.; Tsai, M.F.; Huang, C.W.; Wu, J.C.S. A novel twin reactor for CO2 photoreduction to mimic artificial photosynthesis. Appl. Catal. B Environ. 2013, 132–133, 445–451. [Google Scholar] [CrossRef]
- Truong, Q.D.; Le, T.H.; Liu, J.Y.; Chung, C.C.; Ling, Y.C. Synthesis of TiO2 nanoparticles using novel titanium oxalate complex towards visible light-driven photocatalytic reduction of CO2 to CH3OH. Appl. Catal. A Gen. 2012, 437–438, 28–35. [Google Scholar] [CrossRef]
- Liu, L.; Gao, F.; Zhao, H.; Li, Y. Tailoring Cu valence and oxygen vacancy in Cu/TiO2 catalysts for enhanced CO2 photoreduction efficiency. Appl. Catal. B Environ. 2013, 134–135, 349–358. [Google Scholar] [CrossRef]
- Tahir, M.; Amin, N. Photocatalytic CO2 reduction with H2O vapors using montmorillonite/TiO2 supported microchannel monolith photoreactor. Chem. Eng. J. 2013, 230, 314–327. [Google Scholar] [CrossRef]
- Lo, C.C.; Hung, C.H.; Yuan, C.S.; Hung, Y.L. Parameter Effects and Reaction Pathways of Photoreduction of CO2 over TiO2/SO42– Photocatalyst. Chin. J. Catal. 2007, 28, 528–534. [Google Scholar] [CrossRef]
- Das, S.; Wan Daud, W.M.A. A review on advances in photocatalysts towards CO2 conversion. RCS Adv. 2014, 4, 20856–20893. [Google Scholar] [CrossRef]
- Tahir, M.; Amin, N. Recycling of carbon dioxide to renewable fuels by photocatalysis: Prospects and challenges. Renew. Sustain. Energy Rev. 2013, 25, 560–579. [Google Scholar] [CrossRef]
- Liu, G.; Hoivik, N.; Wang, K.; Jakobsen, H. Engineering TiO2 nanomaterials for CO2 conversion/solar fuels. Sol. Energy Mater. Sol Cells 2012, 105, 53–68. [Google Scholar] [CrossRef]
- Cook, R.L.; MacDuff, R.C.; Sammells, A.F. Photoelectrochemical Carbon Dioxide Reduction to Hydrocarbons at Ambient Temperature and Pressure. J. Electrochem. Soc. 1988, 135, 3069–3070. [Google Scholar] [CrossRef]
- Dey, G.; Belapurkar, A.; Kishore, K. Photo-catalytic reduction of carbon dioxide to methane using TiO2 as suspension in water. J. Photochem. Photobiol. A 2004, 163, 503–508. [Google Scholar] [CrossRef]
- Kočí, K.; Obalová, L.; Lacný, Z. Photocatalytic reduction of CO2 over TiO2 based catalysts. Chem. Pap. 2008, 62, 1–9. [Google Scholar] [CrossRef]
- Ichikawa, S.; Doi, R. Hydrogen production from water and conversion of carbon dioxide to useful chemicals by room temperature photoelectrocatalysis. Catal. Today 1995, 27, 271–277. [Google Scholar] [CrossRef]
- Hasan, R.; Hamid, S.B.A.; Basirun, W.J.; Chowdhury, Z.Z.; Kandjani, A.E.; Bhargava, S.K. Ga doped RGO–TiO2 composite on an ITO surface electrode for investigation of photoelectrocatalytic activity under visible light irradiation. New J. Chem. 2015, 39, 369–376. [Google Scholar] [CrossRef]
- Gering, K.L. Photoreactor with Self-Contained Photocatalyst Recapture. U.S. Patent US6827911 B1, 2004. [Google Scholar]
- Funken, K.H.; Sattler, C.; Ortner, J. Lde Oliveira, Solar Photoreactor. U.S. Patent US6633042 B1, 2017. [Google Scholar]
- Perry, R.H.; Green, D.W.; Maloney, J.O. Perry’s Chemical Engineers’ Handbook, 7th ed.; McGraw-Hill: New York, NY, USA, 1999; pp. 2-241–2-243. ISBN 0-07-049841-5. [Google Scholar]
- Anpo, M.; Yamashita, H.; Ikeue, K.; Fujii, Y.; Zhang, S.G.; Ichihashi, Y.; Park, D.R.; Suzuki, Y.; Koyano, K.; Tatsumi, T. Selective formation of CH3OH in the photocatalytic reduction of CO2 with H2O on titanium oxides highly dispersed within zeolites and mesoporous molecular sieves. Catal. Today 1998, 44, 327–331. [Google Scholar] [CrossRef]
- Richardson, P.L.; Perdigoto, M.L.N.; Wang, W.; Lopes, R.J.G. Heterogeneous photo-enhanced conversion of carbon dioxide to formic acid with copper- and gallium-doped titania nanocomposites. Appl. Catal. B Environ. 2013, 132–133, 408–415. [Google Scholar] [CrossRef]
- Ola, O.; Maroto-Valer, M. Review of material design and reactor engineering on TiO2 photocatalysis for CO2 reduction. J. Photochem. Photobiol. C 2015, 24, 16–42. [Google Scholar] [CrossRef]
- Mizuno, T.; Kengi, A.; Kiyohisa, O.; Akira, S. Effect of CO2 pressure on photocatalytic reduction of CO2 using TiO2 in aqueous solutions. J. Photochem. Photobiol. A 1996, 98, 87–90. [Google Scholar] [CrossRef]
- Li, X.; Chen, J.; Li, H.; Li, J.; Xu, Y.; Liu, Y.; Zhou, J. Photoreduction of CO2 to methanol over Bi2S3/CdS photocatalyst under visible light irradiation. J. Nat. Gas Chem. 2011, 20, 413–417. [Google Scholar] [CrossRef]
- Truong, Q.D.; Liu, J.-L.; Chung, C.-C.; Ling, Y.-C. Photocatalytic reduction of CO2 on FeTiO3/TiO2 photocatalyst. Catal. Commun. 2012, 19, 85–89. [Google Scholar] [CrossRef]
- Halmann, M. Photoelectrochemical reduction of aqueous carbon dioxide on p-type gallium phosphide in liquid junction solar cells. Nature 1978, 275, 115–116. [Google Scholar] [CrossRef]
- Fujiwara, H.; Hosokawa, H.; Murakoshi, K.; Wada, Y.; Yanagida, S.; Okada, T.; Yanagida, S. Effect of Surface Structures on Photocatalytic CO2 Reduction Using Quantized CdS Nanocrystallites. J. Phys. Chem. B 1997, 101, 8270–8278. [Google Scholar] [CrossRef]
- Qin, S.; Xin, F.; Liu, Y.; Yin, X.; Ma, W. Photocatalytic reduction of CO2 in methanol to methyl formate over CuO–TiO2 composite catalysts. J. Colloid Interface Sci. 2011, 356, 257–261. [Google Scholar] [CrossRef] [PubMed]
- Liu, B.-J.; Torimoto, T.; Yoneyama, H. Photocatalytic reduction of CO2 using surface-modified CdS photocatalysts in organic solvents. J. Photochem. Photobiol. A 1998, 113, 93–97. [Google Scholar] [CrossRef]
- Compagnoni, M.; Ramis, G.; Freyria, F.S.; Armandi, M.; Bonelli, B.; Rossetti, I. Innovative photoreactors for unconventional photocatalytic processes: The photoreduction of CO2 and the photo-oxidation of ammonia. Rend. Lincei 2017, 28 (Suppl. 1), 151–158. [Google Scholar] [CrossRef]
- Kaneco, S.; Kurimoto, H.; Ohta, K.; Mizuno, T.; Saji, A. Photocatalytic reduction of CO2 using TiO2 powders in liquid CO2 medium. J. Photochem. Photobiol. A 1997, 109, 59–63. [Google Scholar] [CrossRef]
- Bideau-Mehu, A.; Guern, Y.; Abjean, R.; Johannin-Gilles, A. Interferometric determination of the refractive index of carbon dioxide in the ultraviolet region. Opt. Commun. 1973, 9, 432–434. [Google Scholar] [CrossRef]
- Zhang, Q.; Gao, T.; Andino, J.M.; Li, Y. Copper and iodine co-modified TiO2 nanoparticles for improved activity of CO2 photoreduction with water vapor. Appl. Catal. B Environ. 2012, 123–124, 257–267. [Google Scholar] [CrossRef]
- Tahir, M.; Amin, N. Photocatalytic reduction of carbon dioxide with water vapors over montmorillonite modified TiO2 nanocomposites. Appl. Catal. B Environ. 2013, 142–143, 512–522. [Google Scholar] [CrossRef]
- Matějová, L.; Kočí, K.; Reli, M.; Čapek, L.; Hospodková, A.; Peikertová, P.; Matěj, Z.; Obalová, L.; Wach, A.; Kuśtrowski, P. Preparation, characterization and photocatalytic properties of cerium doped TiO2: On the effect of Ce loading on the photocatalytic reduction of carbon dioxide. Appl. Catal. B Environ. 2014, 152–153, 172–183. [Google Scholar] [CrossRef]
- Bazzo, A.; Urawaka, A. Origin of photocatalytic activity in continuous gas phase CO2 reduction over Pt/TiO2. ChemSusChem 2013, 6, 2095–2102. [Google Scholar] [CrossRef] [PubMed]
- Collado, L.; Jana, P.; Sierra, B.; Coronado, J.M.; Pizarro, P.; Serrano, D.P.; de la Peña O’Shea, V.A. Enhancement of hydrocarbon production via artificial photosynthesis due to synergetic effect of Ag supported on TiO2 and ZnO semiconductors. Chem. Eng. J. 2013, 224, 128–135. [Google Scholar] [CrossRef]
- Tahir, M.; Amin, N. Indium-doped TiO2 nanoparticles for photocatalytic CO2 reduction with H2O vapors to CH4. Appl. Catal. B Environ. 2015, 162, 98–109. [Google Scholar] [CrossRef]
- Cybula, A.; Klein, M.; Zaleska, A. Methane formation over TiO2-based photocatalysts: Reaction pathways. Appl. Catal. B Environ. 2015, 164, 433–442. [Google Scholar] [CrossRef]
- Tahir, M.; Amin, N. Advances in visible light responsive titanium oxide-based photocatalysts for CO2 conversion to hydrocarbon fuels. Energy Convers. Manag. 2013, 76, 194–214. [Google Scholar] [CrossRef]
- Raupp, G.A.; Nico, J.A.; Annagi, S.; Changrani, R.; Annapragada, R. Two-Flux Radiation-Field Model for an Annular Packed-Bed Photocatalytic Oxidation Reactor. AIChE J. 2004, 43, 792–801. [Google Scholar] [CrossRef]
- Kočí, K.; Reli, M.; Kozák, O.; Lacný, Z.; Plachá, D.; Plaus, P.; Obalová, L. Influence of reactor geometry on the yield of CO2 photocatalytic reduction. Catal. Today 2011, 176, 212–214. [Google Scholar] [CrossRef]
- Wu, J.C.S.; Lin, H.M. Photo reduction of CO2 to methanol via TiO2 photocatalyst. Int. J. Photoenergy 2005, 7, 115–119. [Google Scholar] [CrossRef]
- Ola, O.; Maroto-Valer, M. Synthesis, characterization and visible light photocatalytic activity of metal based TiO2 monoliths for CO2 reduction. Chem. Eng. J. 2016, 283, 1244–1253. [Google Scholar] [CrossRef]
- Van Gerven, T.; Mul, G.; Moulijn, J.; Stankiewicz, A. A review of intensification of photocatalytic processes. Chem. Eng. Process. 2007, 46, 781–789. [Google Scholar] [CrossRef]
- Howe, R. Recent Developments in Photocatalysis. Dev. Chem. Eng. Miner. Process. 1998, 6, 55–84. [Google Scholar] [CrossRef]
- Pathak, P.; Meziani, M.J.; Li, Y.; Cureton, L.T.; Sun, Y.P. Improving photoreduction of CO2 with homogeneously dispersed nanoscale TiO2 catalysts. Chem. Commun. 2014, 10, 1234–1235. [Google Scholar] [CrossRef]
- Hisatomi, T.; Kubota, J.; Domen, K. Recent advances in semiconductors for photocatalytic and photoelectrochemical water splitting. Chem. Soc. Rev. 2014, 43, 7520–7535. [Google Scholar] [CrossRef] [PubMed]
- Ma, Y.; Wang, X.; Jia, Y.; Chen, X.; Han, H.; Li, C. Titanium Dioxide-Based Nanomaterials for Photocatalytic Fuel Generations. Chem. Rev. 2014, 114, 9987–10043. [Google Scholar] [CrossRef] [PubMed]
- Jitputti, J.; Pavasupree, S.; Suzuki, Y.; Yoshikawa, S. Synthesis and photocatalytic activity for water-splitting reaction of nanocrystalline mesoporous titania prepared by hydrothermal method. J. Solid State Chem. 2007, 180, 1743–1749. [Google Scholar] [CrossRef]
- Sun, W.; Zhang, S.; Wang, C.; Liu, Z.; Mao, Z. Effects of Cocatalyst and Calcination Temperature on Photocatalytic Hydrogen Evolution Over BaTi4O9 Powder Synthesized by the Polymerized Complex Method. Catal. Lett. 2008, 123, 282–288. [Google Scholar] [CrossRef]
- Kawai, T.; Sakata, T. Conversion of carbohydrate into hydrogen fuel by a photocatalytic process. Nature 1980, 286, 474–476. [Google Scholar] [CrossRef]
- Al-Mazroai, L.S.; Bowker, M.; Davies, P.; Dickinson, A.; Greaves, J.; James, D.; Millard, L. The photocatalytic reforming of methanol. Catal. Today 2007, 122, 46–50. [Google Scholar] [CrossRef]
- Romero Ocana, I.; Beltram, A.; Delgado Jaen, J.J.; Adami, G.; Montini, T.; Fornasiero, P. Photocatalytic H2 production by ethanol photodehydrogenation: Effect of anatase/brookite nanocomposites composition. Inorg. Chim. Acta 2015, 431, 197–205. [Google Scholar] [CrossRef]
- Daskalaki, V.M.; Kondarides, D.I. Efficient production of hydrogen by photo-induced reforming of glycerol at ambient conditions. Catal. Today 2009, 144, 75–80. [Google Scholar] [CrossRef]
- Gaya, U.I.; Abdullah, A.H. Heterogeneous photocatalytic degradation of organic contaminants over titanium dioxide: A review of fundamentals, progress and problems. J. Photochem. Photobiol. C 2008, 9, 1–12. [Google Scholar] [CrossRef] [Green Version]
- Yan, Z.; Wu, H.; Han, A.; Yu, X.; Du, P. Noble metal-free cobalt oxide (CoOx) nanoparticles loaded on titanium dioxide/cadmium sulfide composite for enhanced photocatalytic hydrogen production from water. Int. J. Hydrogen Energy 2014, 39, 13353–13360. [Google Scholar] [CrossRef]
- Jing, D.; Zhang, Y.; Guo, L. Study on the synthesis of Ni doped mesoporous TiO2 and its photocatalytic activity for hydrogen evolution in aqueous methanol solution. Chem. Phys. Lett. 2005, 415, 74–78. [Google Scholar] [CrossRef]
- Chiarello, G.L.; Ferri, D.; Selli, E. Effect of the CH3OH/H2O ratio on the mechanism of the gas-phase photocatalytic reforming of methanol on noble metal-modified TiO2. J. Catal. 2011, 280, 168–177. [Google Scholar] [CrossRef]
- Fu, X.; Long, J.; Wang, X.; Leung, D.Y.C.; Ding, Z.; Wu, L.; Zhang, Z.; Li, Z.; Fu, X. Photocatalytic reforming of biomass: A systematic study of hydrogen evolution from glucose solution. Int. J. Hydrogen Energy 2008, 33, 6484–6941. [Google Scholar] [CrossRef]
- Puga, A.V.; Forneli, A.; García, H.; Corma, A. Production of H2 by Ethanol Photoreforming on Au/TiO2. Adv. Funct. Mater. 2014, 24, 241–248. [Google Scholar] [CrossRef]
- Bamwenda, G.R.; Tsubota, S.; Nakamura, T.; Haruta, M. Photoassisted hydrogen production from a water-ethanol solution: A comparison of activities of Au-TiO2 and Pt-TiO2. J. Photochem. Photobiol. A 1995, 89, 177–189. [Google Scholar] [CrossRef]
- Ampelli, C.; Genovese, C.; Passalacqua, R.; Perathoner, S.; Centi, G. A gas-phase reactor powered by solar energy and ethanol for H2 production. Appl. Therm. Eng. 2014, 70, 1270–1275. [Google Scholar] [CrossRef]
- Bahruji, H.; Bowker, M.; Davies, P.R.; Al-Mazroai, L.S.; Dickinson, A.; Greaves, J.; James, D.; Millard, L.; Pedrono, F. Sustainable H2 gas production by photocatalysis. J. Photochem. Photobiol. A 2010, 216, 115–118. [Google Scholar] [CrossRef]
- Sakata, T.; Kawai, T.; Hashimoto, K. Heterogeneous Photocatalytic Reactions of Organic Acids and Water. New Reaction Paths besides the Photo-Kolbe Reaction. J. Phys. Chem. 1984, 88, 2344–2350. [Google Scholar] [CrossRef]
- Hashimoto, K.; Kawai, T.; Sakata, T. Photocatalytic Reactions of Hydrocarbons and Fossil Fuels with Water. Hydrogen Production and Oxidation. J. Phys. Chem. 1984, 88, 4083–4088. [Google Scholar] [CrossRef]
- Chiarello, G.L.; Aguirre, M.H.; Selli, E. Hydrogen production by photocatalytic steam reforming of methanol on noble metal-modified TiO2. J. Catal. 2010, 273, 182–190. [Google Scholar] [CrossRef]
- Taboada, E.; Angurell, I.; Llorca, J. Dynamic photocatalytic hydrogen production from ethanol–water mixtures in an optical fiber honeycomb reactor loaded with Au/TiO2. J. Catal. 2014, 309, 460–467. [Google Scholar] [CrossRef]
- Lu, H.; Zhao, J.; Li, L.; Gong, L.; Zheng, J.; Zhang, L.; Wang, Z.; Zhang, J.; Zhu, Z. Selective oxidation of sacrificial ethanol over TiO2-based photocatalysts during water splitting. Energy Environ. Sci. 2011, 4, 3384–3388. [Google Scholar] [CrossRef]
- Li, J.; Wu, N. Semiconductor-based photocatalysts and photoelectrochemical cells for solar fuel generation: A review. Catal. Sci. Technol. 2015, 5, 1360–1384. [Google Scholar] [CrossRef]
- Al-Azri, Z.H.N.; Chen, W.-T.; Chan, A.; Jovic, V.; Ina, T.; Idriss, H.; Waterhouse, G.I.N. The roles of metal co-catalysts and reaction media in photocatalytic hydrogen production: Performance evaluation of M/TiO2 photocatalysts (M = Pd, Pt, Au) in different alcohol–water mixtures. J. Catal. 2015, 329, 353–367. [Google Scholar] [CrossRef]
- Chen, X.; Mao, S.S. Titanium Dioxide Nanomaterials: Synthesis, Properties, Modifications, and Applications. Chem. Rev. 2007, 107, 2891–2959. [Google Scholar] [CrossRef] [PubMed]
- Lv, R.; Wang, X.; Lv, W.; Xu, Y.; Ge, Y.; He, H.; Li, G.; Wu, X.; Li, X.; Li, Q. Facile synthesis of ZnO nanorods grown on graphene sheets and its enhanced photocatalytic efficiency. J. Chem. Technol. Biotechnol. 2015, 90, 550–558. [Google Scholar] [CrossRef]
- Barreca, D.; Fornasiero, P.; Gasparotto, A.; Gombac, V.; Maccato, C.; Montini, T.; Tondello, E. The Potential of Supported Cu2O and CuO Nanosystems in Photocatalytic H2 Production. ChemSusChem 2009, 2, 230–233. [Google Scholar] [CrossRef] [PubMed]
- Zieliñska, B.; Borowiak-Palen, E.; Kalenczuk, R.J. Photocatalytic hydrogen generation over alkaline-earth titanates in the presence of electron donors. Int. J. Hydrogen Energy 2008, 33, 1797–1802. [Google Scholar] [CrossRef]
- Kato, H.; Asakura, K.; Kudo, A. Highly Efficient Water Splitting into H2 and O2 over Lanthanum-Doped NaTaO3 Photocatalysts with High Crystallinity and Surface Nanostructure. J. Am. Chem. Soc. 2003, 125, 3082–3089. [Google Scholar] [CrossRef] [PubMed]
- Zeng, G.-S.; Yu, J.; Zhu, H.-Y.; Liu, H.-L.; Xing, Q.-J.; Bao, S.-K.; He, S.; Zou, J.-P.; Au, C.-T. Controllable synthesis of InTaO4 catalysts of different morphologies using a versatile sol precursor for photocatalytic evolution of H2. RSC Adv. 2015, 5, 37603–37609. [Google Scholar] [CrossRef]
- Peng, R.; Wu, C.-M.; Baltrusaitis, J.; Dimitrijevic, N.M.; Ranjit, T.R.; Koodali, T. Ultra-stable CdS incorporated Ti-MCM-48 mesoporous materials for efficient photocatalytic decomposition of water under visible light illumination. Chem. Commun. 2013, 49, 3221–3223. [Google Scholar] [CrossRef] [PubMed]
- Luo, Y.; Liu, X.; Tang, X.; Luo, Y.; Zeng, Q.; Deng, X.; Dinga, S.; Sun, Y. Gold nanoparticles embedded in Ta2O5/Ta3N5 as active visible-light plasmonic photocatalysts for solar hydrogen evolution. J. Mater. Chem. A 2014, 2, 14927–14939. [Google Scholar] [CrossRef]
- Ma, S.S.K.; Maeda, K.; Domen, K. Modification of TaON with ZrO2 to improve photocatalytic hydrogen evolution activity under visible light: Influence of preparation conditions on activity. Catal. Sci. Technol. 2012, 2, 818–823. [Google Scholar] [CrossRef]
- Lavorato, C.; Primo, A.; Molinari, R.; Garcia, H. N-Doped Graphene Derived from Biomass as a Visible-Light Photocatalyst for Hydrogen Generation from Water/Methanol Mixtures. Chem. Eur. J. 2014, 20, 187–194. [Google Scholar] [CrossRef] [PubMed]
- Yang, S.; Gong, Y.; Zhang, J.; Zhan, L.; Ma, L.; Fang, Z.; Vajtai, R.; Wang, X.; Ajayan, P.M. Exfoliated Graphitic Carbon Nitride Nanosheets as Efficient Catalysts for Hydrogen Evolution Under Visible Light. Adv. Mater. 2013, 25, 2452–2456. [Google Scholar] [CrossRef] [PubMed]
- Jing, D.; Liu, M.; Shi, J.; Tang, W.; Guo, L. Hydrogen production under visible light by photocatalytic reforming of glucose over an oxide solid solution photocatalyst. Catal. Commun. 2010, 12, 264–267. [Google Scholar] [CrossRef]
- Peng, S.; Ding, M.; Yi, T.; Zhan, Z.; Li, Y. Photocatalytic Hydrogen Evolution and Decomposition of Glycerol over Cd0.5Zn0.5S Solid Solution under Visible Light Irradiation. Environ. Prog. Sustain. Energy 2016, 35, 141–148. [Google Scholar] [CrossRef]
- Jitputti, J.; Suzuki, Y.; Yoshikawa, S. Synthesis of TiO2 nanowires and their photocatalytic activity for hydrogen evolution. Catal. Commun. 2008, 9, 1265–1271. [Google Scholar] [CrossRef]
- Yu, J.; Qi, L.; Jaroniec, M. Hydrogen Production by Photocatalytic Water Splitting over Pt/TiO2 Nanosheets with Exposed (001) Facets. J. Phys. Chem. C 2010, 114, 13118–13125. [Google Scholar] [CrossRef]
- Cui, X.; Wang, Y.; Jiang, G.; Zhao, Z.; Xu, C.; Wei, Y.; Duan, A.; Liu, J.; Gao, J. A photonic crystal-based CdS–Au–WO3 heterostructure for efficient visible-light photocatalytic hydrogen and oxygen evolution. RSC Adv. 2014, 4, 15689–15694. [Google Scholar] [CrossRef]
- Carmichael, P.; Hazafy, D.; Bhachu, D.S.; Mills, A.; Darra, J.A.; Parkin, I.P. Atmospheric pressure chemical vapour deposition of boron doped titanium dioxide for photocatalytic water reduction and oxidation. Phys. Chem. Chem. Phys. 2013, 15, 16788–16794. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kanade, K.G.; Kale, B.B.; Baeg, J.-O.; Lee, S.M.; Lee, C.W.; Moon, S.-J.; Chang, H. Self-assembled aligned Cu doped ZnO nanoparticles for photocatalytic hydrogen production under visible light irradiation. Mater. Chem. Phys. 2007, 102, 98–104. [Google Scholar] [CrossRef]
- Zhang, S.; Peng, B.; Yang, S.; Fang, Y.; Peng, F. The influence of the electrodeposition potential on the morphology of Cu2O/TiO2 nanotube arrays and their visible-light-driven photocatalytic activity for hydrogen evolution. Int. J. Hydrogen Energy 2013, 38, 13866–13871. [Google Scholar] [CrossRef]
- Daskalaki, V.M.; Antoniaudou, M.; Li Puma, G.; Kondarides, D.I.; Lianos, P. Solar Light-Responsive Pt/CdS/TiO2 Photocatalysts for Hydrogen Production and Simultaneous Degradation of Inorganic or Organic Sacrificial Agents in Wastewater. Environ. Sci. Technol. 2010, 44, 7200–7205. [Google Scholar] [CrossRef] [PubMed]
- Xiao, S.; Liu, P.; Zhu, W.; Li, G.; Zhang, D.; Li, H. Copper Nanowires: A Substitute for Noble Metals to Enhance Photocatalytic H2 Generation. Nano Lett. 2015, 15, 4853–4858. [Google Scholar] [CrossRef] [PubMed]
- Wang, X.; Liu, G.; Lu, G.Q.; Cheng, H.-M. Stable photocatalytic hydrogen evolution from water over ZnO–CdS core–shell nanorods. Int. J. Hydrogen Energy 2010, 35, 8199–8205. [Google Scholar] [CrossRef]
- Kida, T.; Guan, G.; Yamada, N.; Ma, T.; Kimura, K.; Yoshida, A. Hydrogen production fromsewage sludge solubilized in hot-compressed water using photocatalyst under light irradiation. Int. J. Hydrogen Energy 2004, 29, 269–274. [Google Scholar] [CrossRef]
- Tran, P.D.; Batabyal, S.K.; Pramana, S.S.; Barber, J.; Wong, L.H.; Loo, S.C.J. A cuprous oxide–reduced graphene oxide (Cu2O–rGO) composite photocatalyst for hydrogen generation: Employing rGO as an electron acceptor to enhance the photocatalytic activity and stability of Cu2O. Nanoscale 2012, 4, 3875–3878. [Google Scholar] [CrossRef] [PubMed]
- Ye, A.; Fan, W.; Zhang, Q.; Deng, W.; Wang, Y. CdS–graphene and CdS–CNT nanocomposites as visible-light photocatalysts for hydrogen evolution and organic dye degradation. Catal. Sci. Technol. 2012, 2, 969–978. [Google Scholar] [CrossRef]
- Yuzawa, H.; Yoshida, T.; Yoshida, H. Gold nanoparticles on titanium oxide effective for photocatalytic hydrogen formation under visible light. Appl. Catal. B 2012, 115–116, 294–302. [Google Scholar] [CrossRef]
- Zhang, S.; Peng, B.; Yang, S.; Wang, H.; Yu, H.; Fang, Y.; Peng, F. Non-noble metal copper nanoparticles-decorated TiO2 nanotube arrays with plasmon-enhanced photocatalytic hydrogen evolution under visible light. Int. J. Hydrogen Energy 2015, 40, 303–310. [Google Scholar] [CrossRef]
- Fu, X.; Wang, X.; Leung, D.Y.C.; Xue, W.; Ding, Z.; Huang, H.; Fu, X. Photocatalytic reform ing of glucose over La doped alkali tantalate photocatalysts for H2 production. Catal. Commun. 2010, 12, 184–187. [Google Scholar] [CrossRef]
- Xiang, Q.; Yu, J.; Jaroniec, M. Preparation and Enhanced Visible-Light Photocatalytic H2-Production Activity of Graphene/C3N4 Composites. J. Phys. Chem. C 2011, 115, 7355–7363. [Google Scholar] [CrossRef]
- Bard, A.J. Photoelectrochemistry and heterogeneous photocatalysis at semiconductors. J. Photochem. 1979, 10, 59–75. [Google Scholar] [CrossRef]
- Sasaki, Y.; Nemoto, H.; Saito, K.; Kudo, A. Solar Water Splitting Using Powdered Photocatalysts Driven by Z-Schematic Interparticle Electron Transfer without an Electron Mediator. J. Phys. Chem. C 2009, 113, 17536–17542. [Google Scholar] [CrossRef]
- Zhou, P.; Yu, J.; Jaroniec, M. All-Solid-State Z-Scheme Photocatalytic Systems. Adv. Mater. 2014, 26, 4920–4935. [Google Scholar] [CrossRef] [PubMed]
- Yu, Z.B.; Xie, Y.P.; Liu, G.; Lu, G.Q.; Ma, X.L.; Cheng, H.-M. Self-assembled CdS/Au/ZnO heterostructure induced by surface polar charges for efficient photocatalytic hydrogen evolution. J. Mater. Chem. A 2013, 1, 2773–2776. [Google Scholar] [CrossRef]
- Fu, N.; Jin, Z.; Wu, Y.; Lu, G.; Li, D. Z-Scheme Photocatalytic System Utilizing Separate Reaction Centers by Directional Movement of Electrons. J. Phys. Chem. C 2011, 115, 8586–8593. [Google Scholar] [CrossRef]
- Yu, W.; Chen, J.; Shang, T.; Chen, L.; Gu, L.; Peng, T. Direct Z-scheme g-C3N4/WO3 photocatalyst with atomically defined junction for H2 production. Appl. Catal. B 2017, 219, 693–704. [Google Scholar] [CrossRef]
- Tanaka, A.; Hashimoto, K.; Kominami, H. Visible-Light-Induced Hydrogen and Oxygen Formation over Pt/Au/WO3 Photocatalyst Utilizing Two Types of Photoabsorption Due to Surface Plasmon Resonance and Band-Gap Excitation. J. Am. Chem. Soc. 2014, 136, 586–589. [Google Scholar] [CrossRef] [PubMed]
- Chiarello, G.L.; Forni, L.; Selli, E. Photocatalytic hydrogen production by liquid- and gas-phase reforming of CH3OH over flame-made TiO2 and Au/TiO2. Catal. Today 2009, 144, 69–74. [Google Scholar] [CrossRef]
- Yu, J.; Hai, Y.; Jaroniec, M. Photocatalytic hydrogen production over CuO-modified titania. J. Colloid Interface Sci. 2011, 357, 223–228. [Google Scholar] [CrossRef] [PubMed]
- Subramanian, V.; Wolf, E.E.; Kamat, P.V. Catalysis with TiO2/Gold Nanocomposites. Effect of Metal Particle Size on the Fermi Level Equilibration. J. Am. Chem. Soc. 2004, 126, 4943–4950. [Google Scholar] [CrossRef] [PubMed]
- Ai, G.; Li, H.; Liu, S.; Mo, R.; Zhong, J. Solar Water Splitting by TiO2/CdS/Co–Pi Nanowire Array Photoanode Enhanced with Co-Pi as Hole Transfer Relay and CdS as Light Absorber. Adv. Funct. Mater. 2015, 25, 5706–5713. [Google Scholar] [CrossRef]
- Bowker, M.; Millard, L.; Greaves, J.; James, D.; Soares, J. Photocatalysis by Au Nanoparticles: Reforming of Methanol. Gold Bull. 2004, 37, 170–173. [Google Scholar] [CrossRef]
- Speltini, A.; Sturini, M.; Maraschi, F.; Dondi, D.; Fisogni, G.; Annovazzi, E.; Profumo, A.; Buttafava, A. Evaluation of UV-A and solar light photocatalytic hydrogen gas evolution from olive mill wastewater. Int. J. Hydrogen Energy 2015, 40, 4303–4310. [Google Scholar] [CrossRef]
- Caravaca, A.; Jones, W.; Hardacre, C.; Bowker, M. H2 production by the the photocatalytic reforming of cellulose and rawbiomass using Ni, Pd, Pt and Au on titania. Proc. R. Soc. A 2016, 472, 20160054. [Google Scholar] [CrossRef] [PubMed]
- Chen, W.-T.; Chan, A.; Sun-Waterhouse, D.; Moriga, T.; Idriss, H.; Waterhouse, G.I.N. Ni/TiO2: A promising low-cost photocatalytic system for solar H2 production from ethanol–water mixtures. J. Catal. 2015, 316, 43–53. [Google Scholar] [CrossRef]
- Chen, W.-T.; Jovic, V.; Sun-Waterhouse, D.; Idriss, H.; Waterhouse, G.I.N. The role of CuO in promoting photocatalytic hydrogen production over TiO2. Int. J. Hydrogen Energy 2013, 38, 15036–15048. [Google Scholar] [CrossRef]
- Melián, E.P.; Suárez, M.N.; Jardiel, T.; Rodríguez, J.M.D.; Caballero, A.C.; Araña, J.; Calatayud, D.G.; Díaz, O.G. Influence of nickel in the hydrogen production activity of TiO2. Appl. Catal. B 2014, 152–153, 192–201. [Google Scholar] [CrossRef]
- Cobo, S.; Heidkamp, J.; Jacques, P.-A.; Fize, J.; Fourmond, V.; Guetaz, L.; Jousselme, B.; Ivanova, V.; Dau, H.; Palacin, S.; et al. A Janus cobalt-based catalytic material for electro-splitting of water. Nat. Mater. 2012, 11, 802–807. [Google Scholar] [CrossRef] [PubMed]
- Fujita, S.-I.; Kawamori, H.; Honda, D.; Yoshida, H.; Arai, M. Photocatalytic hydrogen production from aqueous glycerol solution using NiO/TiO2 catalysts: Effects of preparation and reaction conditions. Appl. Catal. B 2016, 181, 818–824. [Google Scholar] [CrossRef]
- Su, R.; Tiruvalam, R.; Logsdail, A.J.; He, Q.; Downing, C.A.; Jensen, M.T.; Dimitratos, N.; Kesavan, L.; Wells, P.P.; Bechstein, R.; et al. Designer Titania-Supported Au-Pd Nanoparticles for Efficient Photocatalytic Hydrogen Production. ACS Nano 2014, 8, 3490–3497. [Google Scholar] [CrossRef] [PubMed]
- Gallo, A.; Montini, T.; Marelli, M.; Minguzzi, A.; Gombac, V.; Psaro, R.; Fornasiero, P.; Dal Santo, V. H2 Production by Renewables Photoreforming on Pt–Au/TiO2 Catalysts Activated by Reduction. ChemSusChem 2012, 5, 1800–1811. [Google Scholar] [CrossRef] [PubMed]
- Hu, Z.; Yu, J.C. Pt3Co-loaded CdS and TiO2 for photocatalytic hydrogen evolution from water. J. Mater. Chem. A 2013, 1, 12221–12228. [Google Scholar] [CrossRef]
- Jung, M.; Hart, J.N.; Boensch, D.; Scott, J.; Ng, Y.H.; Amal, R. Hydrogen evolution via glycerol photoreforming over Cu–Pt nanoalloys on TiO2. Appl. Catal. A 2016, 518, 221–230. [Google Scholar] [CrossRef]
- Han, B.; Hu, Y.H. MoS2 as a co-catalyst for photocatalytic hydrogen production from water. Energy Sci. Eng. 2016, 4, 285–304. [Google Scholar] [CrossRef]
- Xiang, Q.; Yu, J.; Jaroniec, M. Synergetic Effect of MoS2 and Graphene as Cocatalysts for Enhanced Photocatalytic H2 Production Activity of TiO2 Nanoparticles. J. Am. Chem. Soc. 2012, 134, 6575–6578. [Google Scholar] [CrossRef] [PubMed]
- Xiang, Q.; Cheng, F.; Lang, D. Hierarchical Layered WS2/Graphene-Modified CdS Nanorods for Efficient Photocatalytic Hydrogen Evolution. ChemSusChem 2016, 9, 996–1002. [Google Scholar] [CrossRef] [PubMed]
- Mahler, B.; Hoepfner, V.; Liao, K.; Ozin, G.A. Colloidal Synthesis of 1T-WS2 and 2H-WS2 Nanosheets: Applications for Photocatalytic Hydrogen Evolution. J. Am. Chem. Soc. 2014, 136, 14121–14127. [Google Scholar] [CrossRef] [PubMed]
- Zong, X.; Yan, H.; Wu, G.; Ma, G.; Wen, F.; Wang, L.; Li, C. Enhancement of Photocatalytic H2 Evolution on CdS by Loading MoS2 as Cocatalyst under Visible Light Irradiation. J. Am. Chem. Soc. 2008, 130, 7176–7177. [Google Scholar] [CrossRef] [PubMed]
- Wang, D.; Li, R.; Zhu, J.; Shi, J.; Han, J.; Zong, X.; Li, C. Photocatalytic Water Oxidation on BiVO4 with the Electrocatalyst as an Oxidation Cocatalyst: Essential Relations between Electrocatalyst and Photocatalyst. J. Phys. Chem. C 2012, 116, 5082–5089. [Google Scholar] [CrossRef]
- Lutterman, D.A.; Surendranath, Y.; Nocera, D.G. A Self-Healing Oxygen-Evolving Catalyst. J. Am. Chem. Soc. 2009, 131, 3838–3839. [Google Scholar] [CrossRef] [PubMed]
- Di, T.; Zhu, B.; Zhang, J.; Cheng, B.; Yu, J. Enhanced photocatalytic H2 production on CdS nanorod using cobalt-phosphate as oxidation cocatalyst. Appl. Surf. Sci. 2016, 389, 775–782. [Google Scholar] [CrossRef]
- Bernareggi, M.; Dozzi, M.V.; Bettini, L.G.; Ferretti, A.M.; Chiarello, G.L.; Selli, E. Flame-Made Cu/TiO2 and Cu-Pt/TiO2 Photocatalysts for Hydrogen Production. Catalysts 2017, 7, 301. [Google Scholar] [CrossRef]
- Wu, G.; Chen, T.; Su, W.; Zhou, G.; Zong, X.; Lei, Z.; Li, C. H2 production with ultra-low CO selectivity via photocatalytic reforming of methanol on Au/TiO2 catalyst. Int. J. Hydrogen Energy 2008, 33, 1243–1251. [Google Scholar] [CrossRef]
- Villa, K.; Doménech, X.; Malato, S.; Maldonado, M.I.; Peral, J. Heterogeneous photocatalytic hydrogen generation in a solar pilot plant. Int. J. Hydrogen Energy 2013, 38, 12718–12724. [Google Scholar] [CrossRef]
- Shimura, K.; Kato, S.; Yoshida, T.; Itoh, H.; Hattori, T.; Yoshida, H. Photocatalytic Steam Reforming of Methane over Sodium Tantalate. J. Phys. Chem. C 2010, 114, 3493–3503. [Google Scholar] [CrossRef]
- Yoshida, H.; Hirao, K.; Nishimoto, J.-I.; Shimura, K.; Kato, S.; Itoh, H.; Hattori, T. Hydrogen Production from Methane and Water on Platinum Loaded Titanium Oxide Photocatalysts. J. Phys. Chem. C 2008, 112, 5542–5551. [Google Scholar] [CrossRef]
- Chiarello, G.L.; Dozzi, M.V.; Scavini, M.; Grunwaldt, J.-D.; Selli, E. One step flame-made fluorinated Pt/TiO2 photocatalysts for hydrogen production. Appl. Catal. A 2014, 160–161, 144–151. [Google Scholar] [CrossRef]
- Caravaca, A.; Daly, H.; Smith, M.; Mills, A.; Chansaiac, S.; Hardacre, C. Continuous flow gas phase photoreforming of methanol at elevated reaction temperatures sensitised by Pt/TiO2. React. Chem. Eng. 2016, 1, 649–657. [Google Scholar] [CrossRef]
- Murcia-López, S.; González-Castaño, M.; Flox, C.; Morante, J.R.; Andreu, T. On the role of Cu, Ag and Pt in active titania for gas-phase ethanol photoreforming. Mater. Sci. Semicond. Process. 2018, 73, 30–34. [Google Scholar] [CrossRef]
- Silva, C.G.; Juárez, R.; Marino, T.; Molinari, R.; García, H. Influence of Excitation Wavelength (UV or Visible Light) on the Photocatalytic Activity of Titania Containing Gold Nanoparticles for the Generation of Hydrogen or Oxygen from Water. J. Am. Chem. Soc. 2011, 133, 595–602. [Google Scholar] [CrossRef] [PubMed]
- Zhang, L.; Mohamed, H.H.; Dillert, R.; Bahnemann, D. Kinetics and mechanisms of charge transfer processes in photocatalytic systems: A review. J. Photochem. Photobiol. C 2012, 13, 263–276. [Google Scholar] [CrossRef]
- Xu, C.; Yang, W.; Ren, Z.; Dai, D.; Guo, Q.; Minton, T.K.; Yang, X. Strong Photon Energy Dependence of the Photocatalytic Dissociation Rate of Methanol on TiO2(110). J. Am. Chem. Soc. 2013, 135, 19039–19045. [Google Scholar] [CrossRef] [PubMed]
- Carraro, G.; Maccato, C.; Gasparotto, A.; Montini, T.; Turner, S.; Lebedev, O.I.; Gombac, V.; Adami, G.; Van Tendeloo, G.; Barreca, D.; et al. Enhanced Hydrogen Production by Photoreforming of Renewable Oxygenates Through Nanostructured Fe2O3 Polymorphs. Adv. Funct. Mater. 2014, 24, 372–378. [Google Scholar] [CrossRef]
- Nuo Peh, C.K.; Gao, M.; Wei Ho, G. Harvesting broadband absorption of the solar spectrum for enhanced photocatalytic H2 generation. J. Mater. Chem. A 2015, 3, 19360–19367. [Google Scholar]
- Patsoura, A.; Kondarides, D.I.; Verykios, X.E. Photocatalytic degradation of organic pollutants with simultaneous production of hydrogen. Catal. Today 2007, 214, 94–102. [Google Scholar] [CrossRef]
- Shamsul, N.S.; Kamarudin, S.K.; Rahman, N.A.; Kofli, N.T. An overview on the production of bio-methanol as potential renewable energy. Renew. Sustain. Energy Rev. 2014, 33, 578–588. [Google Scholar] [CrossRef]
- Hirano, Y.; Sagata, K.; Kita, Y. Selective transformation of glucose into propylene glycol on Ru/C catalysts combined with ZnO under low hydrogen pressures. Appl. Catal. A 2015, 502, 1–7. [Google Scholar] [CrossRef]
- Zhao, G.; Zheng, M.; Zhang, J.; Wang, A.; Zhang, T. Catalytic Conversion of Concentrated Glucose to Ethylene Glycol with Semicontinuous Reaction System. Ind. Eng. Chem. Res. 2013, 52, 9566–9572. [Google Scholar] [CrossRef]
- Devarapalli, M.; Atiyeh, H.K. A review of conversion processes for bioethanol production with a focus on syngas fermentation. Biofuel Res. J. 2015, 7, 268–280. [Google Scholar] [CrossRef]
- Ciriminna, R.; Della Pina, C.; Rossi, M.; Pagliaro, M. Understanding the Glycerol Market. Eur. J. Lipid Sci. Technol. 2014, 116, 1432–1439. [Google Scholar] [CrossRef]
- Huber, G.W.; Iborra, S.; Corma, A. Synthesis of Transportation Fuels from Biomass: Chemistry, Catalysts, and Engineering. Chem. Rev. 2006, 106, 4044–4098. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Narkis, N.; Henefeld-Fourrier, S.; Rebhun, M. Volatile organic acids in raw wastewater and in physico-chemical treatment. Water Res. 1980, 14, 1215–1223. [Google Scholar] [CrossRef]
- McKendry, P. Energy production from biomass (part 1): Overview of biomass. Biores. Technol. 2002, 83, 37–46. [Google Scholar] [CrossRef]
- Kondarides, D.I.; Daskalaki, V.M.; Patsoura, A.; Verykios, X.E. Hydrogen Production by Photo-Induced Reforming of Biomass Components and Derivatives at Ambient Conditions. Catal. Lett. 2008, 122, 26–32. [Google Scholar] [CrossRef]
- Speltini, A.; Sturini, M.; Maraschi, F.; Dondi, D.; Serra, A.; Profumo, A.; Buttafava, A.; Albini, A. Swine sewage as sacrificial biomass for photocatalytic hydrogen gas production: Explorative study. Int. J. Hydrogen Energy 2014, 39, 11433–11440. [Google Scholar] [CrossRef]
- López, C.R.; Melián, E.P.; Ortega Méndez, J.A.; Santiago, D.E.; Doña Rodríguez, J.M.; González Díaz, O. Comparative study of alcohols as sacrificial agents in H2 production by heterogeneous photocatalysis using Pt/TiO2 catalysts. J. Photochem. Photobiol. A 2015, 312, 45–54. [Google Scholar] [CrossRef]
- Wu, Y.; Lu, G.; Li, S. The Role of Cu(I) Species for Photocatalytic Hydrogen Generation Over CuOx/TiO2. Catal. Lett. 2009, 133, 97–105. [Google Scholar] [CrossRef]
- Speltini, A.; Sturini, M.; Dondi, D.; Annovazzi, E.; Maraschi, F.; Caratto, V.; Profumo, A.; Buttafava, A. Sunlight-promoted photocatalytic hydrogen gas evolution from water-suspended cellulose: A systematic stud. Photochem. Photobiol. Sci. 2014, 13, 1410–1419. [Google Scholar] [CrossRef] [PubMed]
- Simon, T.; Bouchonville, N.; Berr, M.J.; Vaneski, A.; Adrović, A.; Volbers, D.; Wyrwich, R.; Döblinger, M.; Susha, A.S.; Rogach, A.L.; et al. Redox shuttle mechanism enhances photocatalytic H2 generation on Ni-decorated CdS nanorods. Nat. Mater. 2014, 13, 1013–1018. [Google Scholar]
- McCullagh, C.; Skillen, N.; Adams, M.; Robertson, P.K.J. Photocatalytic reactors for environmental remediation: A review. J. Chem. Technol. Biotechnol. 2011, 86, 1002–1017. [Google Scholar] [CrossRef]
- Gupta, R.B. Hydrogen fuel. In Production, Transport and Storage; CRC Press, Taylor & Francis Group: Boca Raton, FL, USA, 2009; pp. 39–42. ISBN 978-1-4200-4575-8. [Google Scholar]
- Leung, D.Y.C.; Caramanna, G.; Maroto-Valer, M.M. An overview of current status of carbon dioxide capture and storage technologies. Renew. Sustain. Energy Rev. 2014, 39, 426–443. [Google Scholar] [CrossRef] [Green Version]
Products | Electrons to Obtain Product from CO2 Reduction | Redox Potential (eV) |
---|---|---|
CO | 2 | −0.53 |
HCOOH | 2 | −0.61 |
HCHO | 4 | −0.48 |
CH3OH | 6 | −0.38 |
CH4 | 8 | −0.24 |
Ref. | Catalyst | Reaction Conditions | Products Formation | Notes |
---|---|---|---|---|
[64] | Anatase TiO2 |
| CH4 0.17 μmol∙g−1∙h−1 H2 8.33 μmol∙g−1∙h−1 |
|
[110] | TiO2 (P25) |
| CH4 1.2 μmol∙g−1∙(Ti) energy efficiency 0.0065% |
|
[111] | Pt/CuAlGaO4 Pt/SrTiO3 WO3 |
| CH3OH 473.3 μmol∙h−1 |
|
[112] | TiO2 |
| CH3OH 0.59 μmol∙g−1 |
|
[102] | TiO2 (P25) |
| CO 0.72 μmol∙g−1∙h−1 HCOOH 1859 μmol∙g−1∙h−1 HCHO 16,537 μmol∙g−1∙h−1 CH3OH 351 μmol∙g−1∙h−1 |
|
[113] | Cu/TiO2 |
| CO 25 μmol∙g−1 CH4 4 μmol∙g−1 |
|
[81] | Cu/TiO2 |
| CH3OH 0.4 μmol∙g−1∙h−1 |
|
[114] | Montmorillonite/TiO2 monolith |
| CH4 139 μmol∙g−1∙h−1 |
|
[115] | SO42−/TiO2 |
| CO 0.85 μmol∙g−1∙h−1 CH4 0.14 μmol∙g−1∙h−1 |
|
[69] | Graphene oxide/TiO2 |
| CO 14.91 μmol∙g−1 CH4 3.98 μmol∙g−1 |
|
Type of Photoreactor | Issue | Approach |
---|---|---|
Three-phase photoreactors | CO2 solubility | Basic reaction medium Alternative solvent High Pressure |
Water splitting | Sacrificial Agent | |
Light scattering | Efficient stirring Wise reactor geometry | |
Fouling | Preformed Catalyst | |
Separation | Preformed Catalyst | |
Gas-Solid photoreactors | Variable CO2/H2O ratio | Control of reactants feed |
High contact time | Bath reactor | |
Irradiation inhomogeneity | Geometry Optic fibres Catalyst immobilisation |
Ref. | Catalyst | Co-Catalyst | Reaction Conditions | Products Formation | Notes |
---|---|---|---|---|---|
[168] | TiO2 | 1.0% Au |
| H2 11,242 μmol·g‒1·h‒1 CH4 88 μmol·g‒1·h‒1 C2H4 110 μmol·g‒1·h‒1 C2H6 7 μmol·g‒1·h‒1 CO 36 μmol·g‒1·h‒1 CO2 52 μmol·g‒1·h‒1 CH3CHO 8258 μmol·g‒1·h‒1 | - |
[220] | TiO2 | 0.3% Pt |
| H2 183 molH2·molPt‒1 |
|
[171] | TiO2 | 0.5% Pd |
|
|
|
[170] | TiO2 | 0.5% Cu0.5% Au |
| 0.5% Au/TiO2 H2 212 μmol·h‒1 CH4 8.4 μmol·h‒1 CO 11.8 μmol·h‒1 CO2 7.8 μmol·h‒1 CH3CHO 181 μmol·h‒1 0.5% Cu/TiO2 H2 186 μmol·h‒1 CH4 6.9 μmol·h‒1 CO 9.8 μmol·h‒1 CO2 5.5 μmol·h‒1 CH3CHO 162 μmol·h‒1 |
|
[216] | TiO2 | 0–9% CuO |
| H2-
|
|
[222] | TiO2 | 0–4% Ni |
| 10:90 EtOH/H2O H2 11.6 μmol·g‒1·h‒1 (0.5% Ni/TiO2) 80:20 EtOH/H2O H2 20.7 μmol·g‒1·h‒1 (0.5% Ni/TiO2) |
|
[164] | CdS/TiO2 | 0–2.8% CoOx |
| H2 660 μmol·g‒1·h‒1 (2.1% CoOx/CdS/TiO2) | - |
[238] | CdS | 0–20% Co-Pi |
| H2
|
|
[194] | CdS-Au-WO3 | - |
| H2
|
|
[213] | g-C3N4-WO3 | 1% Pt |
| H2
|
|
Issue | Approach | Aim |
---|---|---|
Light utilisation efficiency | Photon energy close to photocatalyst’s bandgap | Reduced photon energy losses |
Low light intensity | Increased AQY (photon utilization) | |
Reactor design | Good irradiation pattern of the photocatalyst | |
Activity enhancement | Increased temperature | Improved product desorption |
Substrate chemical structure | Increased reactivity by increasing the number of hydroxyl moiety | |
Increased substrate concentration | Avoiding limiting reactants issues | |
pH (substrate-dependent) | Improved decomposition in radical-rich medium (alkaline) or improved substrate adsorption | |
Selectivity enhancement | Substrate chemical structure | Decrease alkane formation by side reaction by shorter alkyl chains moiety |
Increased water concentration | Improved mineralization by higher water content | |
pH (substrate-dependent) | Improved mineralization by enhanced radical formation in alkaline medium |
© 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Olivo, A.; Zanardo, D.; Ghedini, E.; Menegazzo, F.; Signoretto, M. Solar Fuels by Heterogeneous Photocatalysis: From Understanding Chemical Bases to Process Development. ChemEngineering 2018, 2, 42. https://doi.org/10.3390/chemengineering2030042
Olivo A, Zanardo D, Ghedini E, Menegazzo F, Signoretto M. Solar Fuels by Heterogeneous Photocatalysis: From Understanding Chemical Bases to Process Development. ChemEngineering. 2018; 2(3):42. https://doi.org/10.3390/chemengineering2030042
Chicago/Turabian StyleOlivo, Alberto, Danny Zanardo, Elena Ghedini, Federica Menegazzo, and Michela Signoretto. 2018. "Solar Fuels by Heterogeneous Photocatalysis: From Understanding Chemical Bases to Process Development" ChemEngineering 2, no. 3: 42. https://doi.org/10.3390/chemengineering2030042