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      UV-Light-Driven Oxygen Pumping in a High-Temperature Solid Oxide Photoelectrochemical Cell

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          Inorganic Materials as Catalysts for Photochemical Splitting of Water

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            A Monolithic Photovoltaic-Photoelectrochemical Device for Hydrogen Production via Water Splitting

            O Khaselev (1998)
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              High-flux solar-driven thermochemical dissociation of CO2 and H2O using nonstoichiometric ceria.

              Because solar energy is available in large excess relative to current rates of energy consumption, effective conversion of this renewable yet intermittent resource into a transportable and dispatchable chemical fuel may ensure the goal of a sustainable energy future. However, low conversion efficiencies, particularly with CO(2) reduction, as well as utilization of precious materials have limited the practical generation of solar fuels. By using a solar cavity-receiver reactor, we combined the oxygen uptake and release capacity of cerium oxide and facile catalysis at elevated temperatures to thermochemically dissociate CO(2) and H(2)O, yielding CO and H(2), respectively. Stable and rapid generation of fuel was demonstrated over 500 cycles. Solar-to-fuel efficiencies of 0.7 to 0.8% were achieved and shown to be largely limited by the system scale and design rather than by chemistry.
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                Author and article information

                Journal
                Advanced Functional Materials
                Adv. Funct. Mater.
                Wiley-Blackwell
                1616301X
                January 2016
                January 2016
                : 26
                : 1
                : 120-128
                Article
                10.1002/adfm.201503597
                477bcd9e-18fd-4cfe-8665-8d15464a2a43
                © 2016

                http://doi.wiley.com/10.1002/tdm_license_1

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