The present work considers the convergence of two approaches for syngas production: solar fuels via the cerium oxide (ceria) redox cycle and the partial oxidation of methane. The chemical thermodynamics of the ceria-methane system reveal that coupling the reduction of ceria to the partial oxidation of methane enables isothermal cycling at temperatures as low as 1223 K with the additional production of high-quality syngas during the reduction step. The equilibrium non-stoichiometry of the oxidation step has a substantial impact on the conversion of the oxidizer to fuel, with important implications for cycle efficiency. A model of the process thermodynamics is used to evaluate the efficiency of the cycle and its sensitivity to oxidation non-stoichiometry, temperature, and concentration ratio. Reduction with methane enables significant gains in efficiency over other proposed approaches, with plausible solar-to-fuel efficiencies reaching 40% without any heat recovery.
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CNRS, Proc Mat & Solar Energy Lab PROMES, 7 Rue 4 Solaire, F-66120 Font Romeu, FranceKing Mongkuts Inst Technol Ladkrabang, Dept Mech Engn, Prince Chumphon Campus, Chumphon 86160, Thailand
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CNRS, Proc Mat & Solar Energy Lab, PROMES, UPR 8521, F-66120 Font Romeu, FranceCNRS, Proc Mat & Solar Energy Lab, PROMES, UPR 8521, F-66120 Font Romeu, France
Abanades, Stephane
Flamant, Gilles
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CNRS, Proc Mat & Solar Energy Lab, PROMES, UPR 8521, F-66120 Font Romeu, FranceCNRS, Proc Mat & Solar Energy Lab, PROMES, UPR 8521, F-66120 Font Romeu, France
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Chinese Acad Sci, Inst Elect Engn, Beijing 100190, Peoples R ChinaChinese Acad Sci, Inst Elect Engn, Beijing 100190, Peoples R China
Ren, Ting
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Li, Xin
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Chang, Chun
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Chang, Zheshao
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Wang, Lei
Dai, Shaomeng
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Chinese Acad Sci, Inst Elect Engn, Beijing 100190, Peoples R China
Univ Chinese Acad Sci, Beijing 100049, Peoples R ChinaChinese Acad Sci, Inst Elect Engn, Beijing 100190, Peoples R China