Applied Catalysis2022,Vol.31114.DOI:10.1016/j.apcatb.2022.121371

Ternary heterojunction in rGO-coated Ag/Cu2O catalysts for boosting selective photocatalytic CO2 reduction into CH4

Wang, Yingli Wei, Yuechang Yu, Xiaolin Xiong, Jing Wang, Xiong Zhang, Xiao Zhao, Zhen Liu, Jian Tang, Zhiling He, Wenjie
Applied Catalysis2022,Vol.31114.DOI:10.1016/j.apcatb.2022.121371

Ternary heterojunction in rGO-coated Ag/Cu2O catalysts for boosting selective photocatalytic CO2 reduction into CH4

Wang, Yingli 1Wei, Yuechang 1Yu, Xiaolin 2Xiong, Jing 1Wang, Xiong 1Zhang, Xiao 1Zhao, Zhen 1Liu, Jian 1Tang, Zhiling 1He, Wenjie1
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作者信息

  • 1. China Univ Petr
  • 2. Chinese Acad Sci
  • 折叠

Abstract

Herein, the ternary catalyst of reduced graphene oxide (rGO)-coated Ag/Cu2O-octahedron nanocrystals (Ag/Cu2O@rGO) was successfully fabricated by method of water bath combining with gas-bubbling-assisted membrane reduction. Supported Ag nanoparticles with low fermi energy can enrich the photogenerated electrons originated from visible light-driven Cu2O octahedral nanocrystals. The surface extended pi bond of coated rGO nanolayers on Ag/Cu2O can further capture photoelectrons and improve adsorption-activation capacities for reactants. Ag-n/Cu2O@rGO catalysts with ternary rGO-Ag-Cu2O heterojunction exhibit excellent performance during selective photocatalytic CO2 reduction with H2O into CH4. Ag-4/Cu2O@rGO catalyst has the highest formation rate (82.6 mu molg(-1) h(-1)) and selectivity (95.4%) of CH4 product. Combined with the results of in-situ DRIFT spectra and density functional theory calculations, the photocatalytic mechanism is proposed: the protonation of CO* intermediate is key step for selective photocatalytic CO2 reduction into CH4. It provides one novel strategy to development of high-efficient photocatalyst for selective CO2 conversion into C1 chemicals.

Key words

Photocatalysts/CO2 photoreduction/Reduced graphene oxide/Cu2O octahedral nanocrystal/Ternary heterojunction/REDUCED GRAPHENE OXIDE/PHOTOREDUCTION/NANOSHEETS/NANOCOMPOSITES/SEPARATION/MECHANISM/ENHANCE/PAIRS

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量57
参考文献量52
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