Distinct solvation patterns of OH<sup>-</sup> versus H<sub>3</sub>O<sup>+</sup> charge defects at electrified gold/water interfaces govern their properties.

Park, Chanbum; Ghosh, Soumya; Forbert, Harald; Marx, Dominik · Nat Commun · 2025

basic_science · Level V

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Abstract

Understanding the solvation structures of OH<sup>-</sup> and H<sub>3</sub>O<sup>+</sup> at metal interfaces is crucial for developing efficient electrochemical devices. In this paper, we present a detailed investigation of the solvation structures of OH<sup>-</sup> and H<sub>3</sub>O<sup>+</sup> near gold electrodes under alkaline and acidic aqueous conditions, using ab initio molecular dynamics simulations at controlled surface charge density conditions. Our findings reveal that the adsorption tendencies of OH<sup>-</sup> and H<sub>3</sub>O<sup>+</sup> are strongly influenced by the oscillating net atomic charge of water normal to the electrified interface in concert with the distinct solvation patterns of these charge defects. While OH<sup>-</sup> preferentially adsorbs onto the gold surface within the first water layer, the positive net atomic charge restricts the closest approach of H<sub>3</sub>O<sup>+</sup> to beyond the first water layer. We unveil resting and active states that support charge transfer processes at the gold/water interface, which critically involve Au atoms in a unique Grotthuss-like mechanism.