Molecular understanding of the critical role of alkali metal cations in initiating CO<sub>2</sub> electroreduction on Cu(100) surface.

Zhang, Zhichao; Li, Hengyu; Shao, Yangfan; Gan, Lin; Kang, Feiyu; Duan, Wenhui; Hansen, Heine Anton; Li, Jia · Nat Commun · 2024

basic_science · Level V

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Abstract

Molecular understanding of the solid-liquid interface is challenging but essential to elucidate the role of the environment on the kinetics of electrochemical reactions. Alkali metal cations (M<sup>+</sup>), as a vital component at the interface, are found to be necessary for the initiation of carbon dioxide reduction reaction (CO<sub>2</sub>RR) on coinage metals, and the activity and selectivity of CO<sub>2</sub>RR could be further enhanced with the cation changing from Li<sup>+</sup> to Cs<sup>+</sup>, while the underlying mechanisms are not well understood. Herein, using ab initio molecular dynamics simulations with explicit solvation and enhanced sampling methods, we systematically investigate the role of M<sup>+</sup> in CO<sub>2</sub>RR on Cu surface. A monotonically decreasing CO<sub>2</sub> activation barrier is obtained from Li<sup>+</sup> to Cs<sup>+</sup>, which is attributed to the different coordination abilities of M<sup>+</sup> with *CO<sub>2</sub>. Furthermore, we show that the competing hydrogen evolution reaction must be considered simultaneously to understand the crucial role of alkali metal cations in CO<sub>2</sub>RR on Cu surfaces, where H<sup>+</sup> is repelled from the interface and constrained by M<sup>+</sup>. Our results provide significant insights into the design of electrochemical environments and highlight the importance of explicitly including the solvation and competing reactions in theoretical simulations of CO<sub>2</sub>RR.