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Updated: Sep 15, 2026

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Electrolysis-Mode-Dependent Valence Reconstruction of Cu-Based Catalysts Enables Selective CO2 Electroreduction
Yuanyuan Ye1, Yang Chen1, Mengjie Zhang1
1Key Laboratory of Functional Molecular Solids Ministry of Education, College of Chemistry and Molecular Sciences, Anhui Normal University, Wuhu241002, China.
Abstract:
Electrochemical CO2 reduction (eCO2R) provides a promising route for converting CO2 into value-added fuels and chemicals, yet controllable selectivity between CH4 and C2+ products remains challenging due to complex proton-coupled electron transfer and sluggish C-C coupling kinetics. Herein, we systematically investigate the influence of galvanostatic electrolysis (GE) and pulsed galvanostatic electrolysis (PGE) on the catalytic behavior of Cu3Al1-LDH toward eCO2R. Under GE, the catalyst undergoes deep reduction to form a Cu0-enriched surface that promotes *CO adsorption and C-C coupling, achieving a high C2+ Faradaic efficiency (FE) of 83.4% at 500 mA cm-2. In contrast, PGE stabilizes a Cu2+/Cu+/Cu0 mixed-valence interface through periodic oxidation-reduction reconstruction, shifting the reaction pathway toward CH4 with an FECH4 of 59.5% at 200 mA cm-2. In situ Raman and attenuated total reflection surface-enhanced infrared absorption spectroscopy reveal that periodic oxidation-reduction during PGE dynamically regulates Cu valence evolution and key reaction intermediates, thereby suppressing C-C coupling while promoting the deep hydrogenation of *CO toward CH4. This work establishes a direct correlation among electrolysis mode, catalyst reconstruction, intermediate evolution, and eCO2R selectivity, providing a new strategy for programmable control of eCO2R pathways.
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