Phosphorus Coordination in Second Shell of Single-Atom Cu Catalyst toward Acetate Production in CO Electroreduction.
basic_science · Level V
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- Record sourced from PubMed, PMID 39239908.
- Also identified by DOI 10.1021/acs.nanolett.4c03182.
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Abstract
It is challenging to achieve highly efficient CO-CO coupling toward C<sub>2</sub> products in electrochemical CO and CO<sub>2</sub> reductions on single-atom catalysts (SACs). Herein, we report a modulation strategy of phosphorus coordination in the second shell of Cu SACs with a Cu-N<sub>4</sub> structure (Cu-N<sub>4</sub>-P<sub>4</sub>/C<sub>4</sub>) and demonstrate experimentally and theoretically the CO-CO coupling through an Eley-Rideal mechanism in electrochemical CO reduction (COR). Remarkably, the Cu SACs exhibit a selectivity of 63.9% toward acetate production in alkaline media on a gas diffusion electrode. Operando synchrotron-based X-ray absorption spectroscopy confirms the robust Cu-N<sub>4</sub>-P<sub>4</sub>/C<sub>4</sub> structure of the Cu SACs against the harsh electrochemical reduction conditions throughout the electrochemical COR, instead of forming Cu clusters for Cu-N<sub>4</sub> configuration, enabling an excellent COR performance toward acetate. This work not only unravels a new mechanism for CO-CO coupling toward C<sub>2</sub> products in COR but also offers a novel strategy for SAC regulation toward multicarbon production with high activity, selectivity, and durability.