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ABSTRACT Electrocatalytic CO 2 reduction (CO 2 RR) to liquid ethanol has emerged as a critical research direction. Ethanol, which undergoes the same C─C coupling process but requires more proton‐coupled electron transfer (PCET) steps than ethylene, which makes the enhancement of ethanol selectivity a significant challenge. Herein, polyaniline‐encapsulated Cu Nanowires (Cu@PANI‐5) have been synthesized via a self‐assembly strategy. The Cu@PANI‐5 with a 5 nm PANI shell achieves 80% multi‐carbon product selectivity and 42% ethanol Faradaic efficiency at 400 mA cm −2 current density. In situ spectroscopy measurements and density functional theory calculations demonstrate that the PANI modification can regulate the *CO intermediate adsorption configuration from *CO top to *CO bridge on the Cu NWs interface, thereby effectively accelerates the PCET process of CO 2 RR. When the ratio of *CO top to *CO bridge is regulated to 1:3 by modulating the thickness of the PANI shell, the C─C coupling is most favorable. The balanced C─C coupling and PCET hydrogenation processes under this ratio enhance the selectivity of ethanol. This work highlights that the *CO intermediate adsorption configuration is pivotal for CO 2 RR catalytic performance, providing valuable guidance for optimizing ethanol selectivity.
Xiong et al. (Thu,) studied this question.