Metallic Ni as Electron Acceptor Modulates the Redox of Catalytic Centers at Activated Ni <sup>0</sup> /Ni(OH) <sub>2</sub> Heterojunctions for Efficient Ethanol Electrooxidation

R Ruixing Du (State Key Laboratory of Materials‐Oriented Chemical Engineering, College of Chemical Engineering Nanjing Tech University Nanjing 211816 China) B Bin Wu W Weiling Tan (School of Chemistry and Chemical Engineering Chongqing University Chongqing China) Y Yuchen Lei Y Yunchuan Tu C Chalachew Mebrahtu Z Zuohuan Chen S Shulong Li (Institute of Advanced Study, Chengdu University 5 , Chengdu 610106,) Z Zuhui Zhou (Institute for Advanced Study Chengdu University Chengdu 610106 China) Z Zhenchen Tang H Huanhao Chen (State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering) S Shiming Chen (Department of Chemistry) L Long Chen (Department of Chemistry, Frontiers Science Center for New Organic Matter and State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry) J Jian‐Jun Wang (College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou Jiangsu China) X Xiaofeng Shi (School of Environment and Safety Engineering) Y Yifan Ye (Advanced Light Source) D Dingsheng Wang (Department of Chemistry) R Regina Palkovits (Institute for Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany) W Wei Zhao F Feng Zeng

Abstract

Abstract The coproduction of high‐value‐added acetate and hydrogen fuel by ethanol‐assisted water electrolysis is significant, but the efficiency of ethanol electrooxidation (EOR) is hindered both by sluggish kinetics, primarily dictated by the redox properties of the catalyst. Therefore, the development of efficient EOR electrocatalysts has to target optimized redox properties. Herein, a Ni 0 /Ni(OH) 2 heterostructure was synthesized by inducing a shift from hydrophilic to hydrophobic properties on the electrode surface during electrochemical deposition. The electrocatalyst enabled a current density of 573.7 mA cm −2 at 1.37 V versus RHE for EOR with a solar‐to‐hydrogen conversion efficiency of 14.4% when coupled to a commercial solar panel. Experimental and theoretical results disclosed that the incorporation of Ni 0 facilitates the ethanol to acetate kinetics through enhanced Ni 2+ to Ni 3+ conversion. The strategy, combining hydrogen production with the synthesis of value‐added products, enhances economic viability compared to conventional water electrolysis, underscoring its promise for practical implementation.

Article Details

Volume / Issue Vol. 64, Issue 38
Published September 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (20)

R

Ruixing Du

State Key Laboratory of Materials‐Oriented Chemical Engineering, College of Chemical Engineering Nanjing Tech University Nanjing 211816 China

B

Bin Wu

W

Weiling Tan

School of Chemistry and Chemical Engineering Chongqing University Chongqing China

Y

Yuchen Lei

Y

Yunchuan Tu

C

Chalachew Mebrahtu

Z

Zuohuan Chen

S

Shulong Li

Institute of Advanced Study, Chengdu University 5 , Chengdu 610106,

Z

Zuhui Zhou

Institute for Advanced Study Chengdu University Chengdu 610106 China

Z

Zhenchen Tang

H

Huanhao Chen

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering

S

Shiming Chen

Department of Chemistry

L

Long Chen

Department of Chemistry, Frontiers Science Center for New Organic Matter and State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry

J

Jian‐Jun Wang

College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou Jiangsu China

X

Xiaofeng Shi

School of Environment and Safety Engineering

Y

Yifan Ye

Advanced Light Source

D

Dingsheng Wang

Department of Chemistry

R

Regina Palkovits

Institute for Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany

W

Wei Zhao

F

Feng Zeng