Boron Vacancy Enhanced Ru─Mo Electron Bridge as an Efficient Electrocatalyst for Anion Exchange Membrane Electrolysis

W Wenli Yu (Department of Integrative Structural and Computational Biology, The Scripps Research Institute) P Pengfei Yang F Fusheng Liu (School of Physical Science and Technology, Southwest Jiaotong University 1 , Chengdu, Sichuan 610106,) H Hongdong Li (Key Laboratory of Eco-Chemical Engineering, Ministry of Education, International Science and Technology Cooperation Base of Eco-chemical Engineering and Green Manufacturing) W Weiping Xiao (College of Science Nanjing Forestry University Nanjing 210037 P.R. China) T Tianyi Ma (Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University) G Guangrui Xu (College of Materials Science and Engineering Qingdao University of Science & Technology Qingdao P. R. China) X Xuyun Guo D Dahai Zhang L Lei Wang B Bin Li Z Zexing Wu (Key Laboratory of Eco‐Chemical Engineering International Science and Technology Cooperation Base of Eco‐Chemical Engineering and Green Manufacturing College of Chemical Engineering Qingdao University of Science and Technology Qingdao P.R. China)

Abstract

ABSTRACT Hybrid electrocatalysts combining noble metals with tailored supports are crucial for efficient hydrogen evolution reaction (HER) across a wide pH range. Here, we report a ruthenium cluster catalyst anchored on molybdenum boride support engineered with boron vacancies (Ru/MoB‐B V ) for highly efficient HER. The introduced boron vacancies optimize the electronic interactions between molybdenum boride and the Ru cluster via a Ru─Mo electron bridge, leading to enhanced catalytic performance and stability. Combined electrochemical analysis and density functional theory calculations reveal that Ru/MoB‐B V possesses a favorable water‐dissociation energy and optimal desorption energies for hydrogen/hydroxide intermediates on Ru clusters. These merits confer exceptional HER performance, with overpotentials of 40 and 34 mV at 10 mA cm −2 in alkaline freshwater and seawater, respectively; 24 mV in acidic electrolyte; and 67 mV in neutral electrolyte. Importantly, the activated Ru and Mo sites enable an anion exchange membrane electrolyzer employing Ru/MoB‐B V as the cathode to exhibit remarkable stability, operating for 100 h at 500 mA cm −2 . This work provides insights into the design of highly efficient and stable catalysts through the precise engineering of surface vacancies.

Article Details

Volume / Issue Vol. 38, Issue 14
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

W

Wenli Yu

Department of Integrative Structural and Computational Biology, The Scripps Research Institute

P

Pengfei Yang

F

Fusheng Liu

School of Physical Science and Technology, Southwest Jiaotong University 1 , Chengdu, Sichuan 610106,

H

Hongdong Li

Key Laboratory of Eco-Chemical Engineering, Ministry of Education, International Science and Technology Cooperation Base of Eco-chemical Engineering and Green Manufacturing

W

Weiping Xiao

College of Science Nanjing Forestry University Nanjing 210037 P.R. China

T

Tianyi Ma

Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University

G

Guangrui Xu

College of Materials Science and Engineering Qingdao University of Science & Technology Qingdao P. R. China

X

Xuyun Guo

D

Dahai Zhang

L

Lei Wang

B

Bin Li

Z

Zexing Wu

Key Laboratory of Eco‐Chemical Engineering International Science and Technology Cooperation Base of Eco‐Chemical Engineering and Green Manufacturing College of Chemical Engineering Qingdao University of Science and Technology Qingdao P.R. China