Enhancing Oxygen Evolution Electrocatalysis in Heazlewoodite: Unveiling the Critical Role of Entropy Levels and Surface Reconstruction

H Hangning Liu (Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China) X Xinghang Liu (Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China) A Anbang Sun (Shandong Institute of Non‐Metallic Materials Jinan 250031 China) C Cuijuan Xuan (Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China) Y Yingjun Ma (Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China) Z Zixuan Zhang H Hui 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) T Tianyi Ma (Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University) J Jie Wang (State Key Laboratory of Molecular Oncology, Beijing Key Laboratory, CAMS Key Laboratory of Translational Research on Lung Cancer, Department of Medical Oncology Cancer Hospital, Chinese Academy of Medical Sciences Beijing China)

Abstract

Abstract Entropy engineering has proven effective in enhancing catalyst electrochemical properties, particularly for the oxygen evolution reaction (OER). Challenges persist, however, in modulating entropy and understanding the dynamic reconfiguration of high‐entropy sulfides during OER. In this study, an innovative in situ corrosion method is introduced to convert low‐valent nickel on a nickel foam substrate into high‐entropy heazlewoodite (HES/NF), significantly boosting OER performance. By synthesizing a series of low‐, medium‐, and high‐entropy heazlewoodites, the intrinsic factors influence catalyst surface evolution and electrocatalytic activity is systematically explored. Employing a combination of in situ and ex situ characterization techniques, it is observed that HES/NF dynamically transforms into a stable hydroxide oxide (MOOH)‐sulfide composite under OER conditions. This transition, coupled with lattice distortion, optimizes the electrostatic potential distribution, ensuring superior catalytic activity and preventing surface sulfide deactivation through the formation of stable HES‐MOOH species. This synergy enables HES/NF to achieve remarkably low overpotentials: 172.0 mV at 100.0 mA cm −2 and 229.0 mV at an extreme current density of 300.0 mA cm −2 . When paired with a Pt/C cathode, HES/NF exhibits rapid kinetics, outstanding stability, and exceptional water‐splitting performance. The scalable, cost‐effective approach paves the way for advanced electrocatalyst design, promising breakthroughs in energy storage and conversion technologies.

Article Details

Volume / Issue Vol. 37, Issue 21
Published May 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

H

Hangning Liu

Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China

X

Xinghang Liu

Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China

A

Anbang Sun

Shandong Institute of Non‐Metallic Materials Jinan 250031 China

C

Cuijuan Xuan

Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China

Y

Yingjun Ma

Qingdao Engineering Research Center of Agricultural Recycling Economy Materials College of Chemistry and Pharmaceutical Sciences Qingdao Agricultural University Qingdao 266109 P. R. China

Z

Zixuan Zhang

H

Hui 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

T

Tianyi Ma

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

J

Jie Wang

State Key Laboratory of Molecular Oncology, Beijing Key Laboratory, CAMS Key Laboratory of Translational Research on Lung Cancer, Department of Medical Oncology Cancer Hospital, Chinese Academy of Medical Sciences Beijing China