Boosting Industrial Hydrogen Evolution via OH– Spillover on Ru Single Atoms Enabled by a Hierarchical Ni@Ni3C Core–Shell Architecture

Abstract Developing industrial-grade alkaline hydrogen evolution catalysts remains a critical challenge due to sluggish water dissociation and limited proton availability at the electrode–electrolyte interface. Here, we construct a metastable Ni/Ni3C core–shell structure and anchor atomically dispersed Ru single-atom sites (Ru SAs/Ni@Ni3C) to overcome this bottleneck. In situ studies reveal that Ru sites selectively adsorb hydroxyl species, enabling a dynamic OH– spillover that rapidly refreshes adjacent Ni active sites. Concurrently, an optimized interfacial water network accelerates proton transport. This synergy between Ru single atoms and the non-equilibrium core–shell substrate achieves exceptional activity and stability through a cooperative hydrogen adsorption–desorption cycle. Ru SAs/Ni@Ni3C demonstrated stable operation at 2 A cm–2 for more than 600 h in an anion-exchange-membrane water electrolyzer (AEMWE). These findings establish a generalizable strategy for designing efficient and durable electrocatalysts for alkaline water electrolysis.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-07
DOI
https://doi.org/10.1021/jacs.6c13759
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
0.00

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article

Boosting Industrial Hydrogen Evolution via OH– Spillover on Ru Single Atoms Enabled by a Hierarchical Ni@Ni3C Core–Shell Architecture

Xianbiao Fu, Yangyang Tan, Shu‐Juan Bao, Xiaoqing Huang et al.
Journal of the American Chemical Society
Electrocatalysts for Energy Conversion
article

Boosting Industrial Hydrogen Evolution via OH– Spillover on Ru Single Atoms Enabled by a Hierarchical Ni@Ni3C Core–Shell Architecture

Xianbiao Fu, Yangyang Tan, Shu‐Juan Bao, Xiaoqing Huang, Longcheng Zhang, Juan Wang, Fan Liu, Qianwei Chen
article en

Abstract

Abstract Developing industrial-grade alkaline hydrogen evolution catalysts remains a critical challenge due to sluggish water dissociation and limited proton availability at the electrode–electrolyte interface. Here, we construct a metastable Ni/Ni3C core–shell structure and anchor atomically dispersed Ru single-atom sites (Ru SAs/Ni@Ni3C) to overcome this bottleneck. In situ studies reveal that Ru sites selectively adsorb hydroxyl species, enabling a dynamic OH– spillover that rapidly refreshes adjacent Ni active sites. Concurrently, an optimized interfacial water network accelerates proton transport. This synergy between Ru single atoms and the non-equilibrium core–shell substrate achieves exceptional activity and stability through a cooperative hydrogen adsorption–desorption cycle. Ru SAs/Ni@Ni3C demonstrated stable operation at 2 A cm–2 for more than 600 h in an anion-exchange-membrane water electrolyzer (AEMWE). These findings establish a generalizable strategy for designing efficient and durable electrocatalysts for alkaline water electrolysis.

Journal of the American Chemical Society
Southwest University (CN), Wenzhou University (CN), National University of Singapore (SG), Nanyang Technological University (SG), Xiamen University (CN), Advanced Materials and Technologies (Slovenia) (SI), Xiamen University of Technology (CN)
National University of Singapore, National Natural Science Foundation of China
Industry, innovation and infrastructure
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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