Built‐In Electric Field in Freestanding Hydroxide/Sulfide Heterostructures for Industrially Relevant Oxygen Evolution

W Wentong Wu (Beijing Huairou Laboratory Changping District Beijing 102209 P.R. China) Y Yueshuai Wang (State Key Laboratory of Materials Low-Carbon Recycling, College of Materials Science and Engineering) S Shizhen Song (Beijing Institute of Smart Energy Beijing 102209 P.R. China) Z Zhichao Ge (International Research Center for Renewable Energy State Key Laboratory of Multiphase Flow in Power Engineering Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China) C Chunyang Zhang J Jie Huang (Department of Chemistry) G Guiren Xu (Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China) N Ning Wang Y Yue Lu Z Zhanfeng Deng (Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China) H Haohong Duan (Department of Chemistry) M Maochang Liu C Cheng Tang (Tsinghua Center for Green Chemical Engineering Electrification, Department of Chemical Engineering)

Abstract

Abstract Alkaline water electrolysis (AWE), as a premier technology to massively produce green hydrogen, hinges on outstanding oxygen evolution reaction (OER) electrodes with high activity and robust stability under high current densities. However, it is often challenged by issues such as catalytic layer shedding, ion dissolution, and inefficient bubble desorption. Herein, a scalable corrosion‐electrodeposition method is presented to synthesize nickel–iron layered double hydroxide (NiFe‐LDH)/Ni 3 S 2 heterostructures on nickel mesh, tailored to meet the stringent requirements of industrial AWE. The study underscores the critical role of the built‐in electric field (BEF) in optimizing electronic properties, curtailing Fe leaching, and enhancing mass transfer. The resultant NiFe‐LDH/Ni 3 S 2 heterostructure manifests remarkable OER performance, with ultra‐low overpotentials of 202 mV at 10 mA cm −2 and 290 mV at 800 mA cm −2 in 1.0  m  KOH at 25 °C, alongside superior steady‐state stability and resistance to reverse current under fluctuating conditions. Furthermore, the performance is further validated in an alkaline electrolyzer, achieving a large current density of 800 mA cm −2 at a cell voltage of 1.908 V, while maintaining excellent stability. This work offers a blueprint for the design of efficient OER electrodes for industrially relevant AWE applications.

Article Details

Volume / Issue Vol. 64, Issue 22
Published May 26, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

W

Wentong Wu

Beijing Huairou Laboratory Changping District Beijing 102209 P.R. China

Y

Yueshuai Wang

State Key Laboratory of Materials Low-Carbon Recycling, College of Materials Science and Engineering

S

Shizhen Song

Beijing Institute of Smart Energy Beijing 102209 P.R. China

Z

Zhichao Ge

International Research Center for Renewable Energy State Key Laboratory of Multiphase Flow in Power Engineering Xi'an Jiaotong University Xi'an Shaanxi 710049 P.R. China

C

Chunyang Zhang

J

Jie Huang

Department of Chemistry

G

Guiren Xu

Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China

N

Ning Wang

Y

Yue Lu

Z

Zhanfeng Deng

Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China

H

Haohong Duan

Department of Chemistry

M

Maochang Liu

C

Cheng Tang

Tsinghua Center for Green Chemical Engineering Electrification, Department of Chemical Engineering