Electric Double Layer Organization of Proton-Transfer Pathways Regulates Alkaline Hydrogen Evolution

Abstract Constructing bifunctional catalysts with synergistic interfaces is a promising strategy to overcome the sluggish kinetics of the hydrogen evolution reaction (HER) in alkaline media, where interfacial proton transfer plays a critical role in the reaction kinetics. However, how bifunctional interfaces regulate the interfacial environment governing proton transfer remains poorly understood, particularly at the nanoscale. Here, using well-defined Pt/Ni and Pt/NiO model systems, we integrate spatially resolved scanning electrochemical microscopy, hydration force measurements, and ab initio molecular dynamics simulations across multiple length scales to establish a correlation among local HER kinetics, interfacial electrostatics, and hydration structure. Specifically, the Pt/NiO-derived interface exhibits a lower potential of zero charge (PZC) that is closer to the HER operating potential together with a more interconnected interfacial hydrogen-bond network. In contrast, the Pt/Ni-derived interface exhibits a higher PZC and a less-interconnected hydration structure. These results identify interfacial electrostatics and hydration organization within the electric double layer (EDL) as important factors governing the enhanced HER kinetics at bifunctional interfaces.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-10-09
DOI
https://doi.org/10.1021/jacs.6c12095
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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article

Electric Double Layer Organization of Proton-Transfer Pathways Regulates Alkaline Hydrogen Evolution

Chenwei Ni, Fengtao Fan, Peimeng Qiu, Fusai Sun et al.
Journal of the American Chemical Society
Electrocatalysts for Energy Conversion
article

Electric Double Layer Organization of Proton-Transfer Pathways Regulates Alkaline Hydrogen Evolution

Chenwei Ni, Fengtao Fan, Peimeng Qiu, Fusai Sun, Yuran Li, Junhao Cui, Can Li, Ziyuan Wang, Xiuli Wang, Tong Sun, Zhongrui Min, Shengli Chen
article en

Abstract

Abstract Constructing bifunctional catalysts with synergistic interfaces is a promising strategy to overcome the sluggish kinetics of the hydrogen evolution reaction (HER) in alkaline media, where interfacial proton transfer plays a critical role in the reaction kinetics. However, how bifunctional interfaces regulate the interfacial environment governing proton transfer remains poorly understood, particularly at the nanoscale. Here, using well-defined Pt/Ni and Pt/NiO model systems, we integrate spatially resolved scanning electrochemical microscopy, hydration force measurements, and ab initio molecular dynamics simulations across multiple length scales to establish a correlation among local HER kinetics, interfacial electrostatics, and hydration structure. Specifically, the Pt/NiO-derived interface exhibits a lower potential of zero charge (PZC) that is closer to the HER operating potential together with a more interconnected interfacial hydrogen-bond network. In contrast, the Pt/Ni-derived interface exhibits a higher PZC and a less-interconnected hydration structure. These results identify interfacial electrostatics and hydration organization within the electric double layer (EDL) as important factors governing the enhanced HER kinetics at bifunctional interfaces.

Journal of the American Chemical Society
Queens College, CUNY (US), Wuhan University (CN), Queens University of Charlotte (US), Queens University (BD), Dalian National Laboratory for Clean Energy (CN), University of Chinese Academy of Sciences (CN), University of Science and Technology Beijing (CN)
Openalex Percentile: Top 34%
Electrocatalysts for Energy Conversion
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