Highly efficient cooperative CO2 electroreduction to CH4 on a copper cluster/C60 hetero-structured catalyst
Abstract
Electrochemical CO2 reduction to CH4 using H2O as the reaction medium represents a green and sustainable approach for CO2 conversion and utilization. Copper-based catalysts have emerged as promising candidates for CO2 deep-reduction, but they still suffer from limited activity and selectivity in CO2-to-CH4 conversion. Herein, we report a copper cluster/C60 hetero-structured catalyst that realizes highly efficient cooperative CO2 electroreduction to CH4. The catalyst achieves a remarkable CH4 faradaic efficiency of 68% and a CH4 partial current density of 255 mA cm−2 in a gas-diffusion flow cell with an alkaline electrolyte. In situ spectroscopic experiments and theoretical calculation results unveil that the copper cluster modified with 1,10-phenanthroline facilitates CO2 activation, while the incorporation of C60 promotes H2O dissociation, supplying sufficient activated hydrogen for the hydrogenation process. The synergy between the copper cluster and C60 in the hetero-structured catalyst cooperatively promotes the formation of the key *CHO intermediate, thereby facilitating CO2-to-CH4 conversion. Our findings highlight the effectiveness of engineering hetero-structured catalysts for CO2 deep-reduction into hydrocarbons.

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