Revisiting nuclear quantum effects on the mechanism of electrochemical reduction of CO at Cu(111) surface

The initial hydrogenation step of *CO on Cu(111) dictates product selectivity in electrochemical CO2 reduction, yet its mechanism remains controversial. Here, at an acidic aqueous Cu(111) interface, we systematically compute the free energy profiles for *CHO and *COH formation via multiple pathways, including direct *H transfer, water-assisted shuttling, and proton-coupled electron transfer (PCET), using machine learning force fields to enable statistical sampling within a grand canonical constrained path integral hybrid Monte Carlo framework that incorporates constant electrode potential, explicit solvation, and nuclear quantum effects (NQEs). At the investigated potential of U = −0.4 V vs SHE and 300 K, *COH does not remain a stable intermediate within the present explicit-solvent Cu(111) model and spontaneously dissociates into *CO and solvated H3O+. For *CHO formation, solvated protons are identified as the primary hydrogen source, predominantly proceeding via the PCET pathway. Surface-adsorbed *H atoms can also reduce *CO, but only through a two-step water-assisted shuttling mechanism rather than concerted transfer. Incorporating NQEs, the activation free energy of the PCET step exhibits a 30% reduction (by 0.12 eV) relative to the quantum barrier, indicating a non-negligible difference in the estimated reaction rate. This work highlights the synergistic importance of explicit solvation, constant-potential conditions, and NQEs in modeling electrochemical interfaces.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-09-16
DOI
https://doi.org/10.1063/5.0344744
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
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Revisiting nuclear quantum effects on the mechanism of electrochemical reduction of CO at Cu(111) surface

Shenzhen Xu, Xiaolong Yang
The Journal of Chemical Physics
CO2 Reduction Techniques and Catalysts
article

Revisiting nuclear quantum effects on the mechanism of electrochemical reduction of CO at Cu(111) surface

Shenzhen Xu, Xiaolong Yang
article en

Abstract

The initial hydrogenation step of *CO on Cu(111) dictates product selectivity in electrochemical CO2 reduction, yet its mechanism remains controversial. Here, at an acidic aqueous Cu(111) interface, we systematically compute the free energy profiles for *CHO and *COH formation via multiple pathways, including direct *H transfer, water-assisted shuttling, and proton-coupled electron transfer (PCET), using machine learning force fields to enable statistical sampling within a grand canonical constrained path integral hybrid Monte Carlo framework that incorporates constant electrode potential, explicit solvation, and nuclear quantum effects (NQEs). At the investigated potential of U = −0.4 V vs SHE and 300 K, *COH does not remain a stable intermediate within the present explicit-solvent Cu(111) model and spontaneously dissociates into *CO and solvated H3O+. For *CHO formation, solvated protons are identified as the primary hydrogen source, predominantly proceeding via the PCET pathway. Surface-adsorbed *H atoms can also reduce *CO, but only through a two-step water-assisted shuttling mechanism rather than concerted transfer. Incorporating NQEs, the activation free energy of the PCET step exhibits a 30% reduction (by 0.12 eV) relative to the quantum barrier, indicating a non-negligible difference in the estimated reaction rate. This work highlights the synergistic importance of explicit solvation, constant-potential conditions, and NQEs in modeling electrochemical interfaces.

The Journal of Chemical PhysicsVol. 165(11)
Peking University (CN)
Openalex Percentile: Top 29%
CO2 Reduction Techniques and Catalysts
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