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Integrated Copper/Alumina Heterojunction with Oxygen Vacancy Promotes the Activity and Selectivity of Electrochemical
Xin Wang1, Jingchen Li1, Wenyang Li1
1College of Chemistry, Zhengzhou University, Zhengzhou, Henan, 450001, P. R. China.
Abstract:
Copper (Cu) can efficiently catalyze the CO2 electrochemical reduction reaction (CO2RR) to produce high-value-added fuels and chemicals, of which methane (CH4) is of interest due to its high mass-energy density. However, the poor activity of Cu toward a specific product, as well as the relatively weak adsorption of *CO intermediates on the Cu surface, favors competitive *CO dimerization, thus limiting the selectivity for CH4. Here, a heterojunction strategy is proposed by importing catalytically inert oxide containing oxygen vacancies to Cu (namely Cuy/Al2O3- x@C), which accelerates CO2 electromethanation by altering the local geometries and electronic structures of catalysts, resulting in strong adsorption of *CO on the catalyst. By adjusting the composition of the catalyst, the Faraday efficiency (FE) toward CH4 can be effectively nearly doubled from 39.2% to 74.6%. In situ Raman spectroscopy and Density functional theory (DFT) calculations reveal that oxygen vacancies in the catalyst can enrich proton donors and enhance the adsorption energy of *CO on the catalyst, thereby reducing the reaction energy barrier for the hydrogenation of *CO to CH4. This work provided a new pathway for the Cu-based electrocatalyst design to achieve high selectivity by modulating the adsorption behavior of key intermediates.
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