Transcending the Magnetothermal Limit: Electron‐Driven Structural Regulation in AMF‐Enhanced OER Catalysis

H Hongyao Xue (College of Electromechanical Engineering Qingdao University of Science and Technology Qingdao Shandong P. R. China) J Jiacheng Wang (Zhejiang Key Laboratory for Island Green Energy and New Materials, Institute of Electrochemistry, School of Materials Science and Engineering) X Xiyue Li Y Yihao Li (Department of Medical Oncology, Dana-Farber Cancer Institute) R Rongrong Cui Y Yongzhe Li F Fengxia Deng (State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin P. R. China) M Mei Han (Department of Gastroenterology, The Second Hospital of Dalian Medical University) H Huifang Li Y Yan He S Shouhua Feng (State Key Laboratory of Inorganic Synthesis and Preparative Chemistry College of Chemistry)

Abstract

ABSTRACT As a novel regulatory dimension, the alternating magnetic field (AMF) holds significant potential in enhancing the oxygen evolution reaction (OER). However, conventional AMF enhancements primarily rely on the suboptimal magnetothermal effect, which induces nonselective bulk heating and fails to provide targeted driving forces for catalysts, thereby severely limiting OER performance improvements. Here, a novel strategy has been demonstrated to precisely guide AMF energy from inefficient thermal dissipation to electron‐driven structural regulation by constructing energy dissipation channels for catalysts, which leads to the mechanism transformation from magnetothermal catalysis to electron‐driven catalysis. Typically, taking Fe 2 O 3 @CNTs as the research model, AMF induces localized electric fields that energize intrinsic charge carriers within Fe 2 O 3 . These energized electrons are then rapidly extracted by the carbon nanotubes (CNTs) network before they can undergo thermal relaxation. This efficient charge separation generates a high density of electron‐deficient, highly valent Fe sites on the Fe 2 O 3 surface, creating a potent localized chemical potential that drives deep structural reconstruction. Notably, the observed Duplex α/β ‐FeOOH phase is highly active, lowering the overpotential by 73 mV (∼22%) at 100 mA cm −2 . This work provides novel insight into magneto‐electrocatalysis and demonstrates that constructing energy dissipation channels is an efficient strategy for enhanced OER activity.

Article Details

Volume / Issue Vol. 65, Issue 20
Published May 11, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

H

Hongyao Xue

College of Electromechanical Engineering Qingdao University of Science and Technology Qingdao Shandong P. R. China

J

Jiacheng Wang

Zhejiang Key Laboratory for Island Green Energy and New Materials, Institute of Electrochemistry, School of Materials Science and Engineering

X

Xiyue Li

Y

Yihao Li

Department of Medical Oncology, Dana-Farber Cancer Institute

R

Rongrong Cui

Y

Yongzhe Li

F

Fengxia Deng

State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin P. R. China

M

Mei Han

Department of Gastroenterology, The Second Hospital of Dalian Medical University

H

Huifang Li

Y

Yan He

S

Shouhua Feng

State Key Laboratory of Inorganic Synthesis and Preparative Chemistry College of Chemistry