Enriching the Local Concentration of CO Intermediates on Cu Cavities for the Electrocatalytic Reduction of CO to C Products.

ACS Appl Mater Interfaces

School of Chemistry and Chemical Engineering, State Key Laboratory of Analytical Chemistry for Life Science, Nanjing University, Nanjing 210023, China.

Published: April 2023

The electrochemical carbon-dioxide reduction reaction (CORR) to high-value multi-carbon (C) chemicals provides a hopeful approach to store renewable energy and close the carbon cycle. Although copper-based catalysts with a porous architecture are considered potential electrocatalysts for CO reduction to C chemicals, challenges remain in achieving high selectivity and partial current density simultaneously for practical application. Here, the porous Cu catalysts with a cavity structure by in situ electrochemical-reducing CuO cavities are developed for high-performance conversion of CO to C fuels. The as-described catalysts exhibit a high C Faradaic efficiency and partial current density of 75.6 ± 1.8% and 605 ± 14 mA cm, respectively, at a low applied potential (-0.59 V vs RHE) in a microfluidic flow cell. Furthermore, in situ Raman tests and finite element simulation indicated that the cavity structure can enrich the local concentration of CO intermediates, thus promoting the C-C coupling process. More importantly, the C-C coupling should be major through the *CO-*CHO pathway as demonstrated by the electrochemical Raman spectra and density functional theory calculations. This work can provide ideas and insights into designing high-performance electrocatalysts for producing C compounds and highlight the important effect of in situ characterization for uncovering the reaction mechanism.

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http://dx.doi.org/10.1021/acsami.2c21902DOI Listing

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