Symmetry‐Breaking Modulation of Platinum Sites in Multicomponent Alloy for Efficient Oxygen Reduction Reaction

X Xinyi Shen (Clarendon Laboratory, Department of Physics, University of Oxford, Parks Road, Oxford OX1 3PU, U.K.) X Xue Zhang W Wenfeng Hu X Xiaolin Tai (State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science) W Wenzhi Li Y Yuwen Chen M Mengzhao Zhu (State Key Laboratory of Precision and Intelligent Chemistry National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei P. R. China) H Huijuan Zhang (Department of Oncology The Affiliated Yantai Yuhuangding Hospital of Qingdao University Medical College Yantai China) Q Qinghua Zhang L Lin Gu Y Yue Lin Y Yuen Wu (The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine) M Mei Sun L Li‐Ming Yang (School of Chemistry and Chemical Engineering Huazhong University of Science and Technology Wuhan P. R. China) X Xiaokang Liu (State Key Laboratory of Geomicrobiology and Environmental Changes, School of Earth Sciences, China University of Geosciences) L Linlin Cao T Tao Yao (National Synchrotron Radiation Laboratory, State Key Laboratory of Precision and Intelligent Chemistry, School of Nuclear Science and Technology)

Abstract

ABSTRACT Understanding and controlling atomic‐level interactions within multicomponent alloys provides a promising avenue to drive multistep tandem catalysis. Herein, we develop an atomic symmetry‐breaking PtFeCoCu multicomponent alloy that disrupts long‐range order and local coordination homogeneity and identify the nature of its enhanced performance for oxygen reduction reaction (ORR). The deliberate symmetry breaking, featured by heterogeneous local coordination and anisotropic strain, enriches the Pt environment with additional transition‐metal neighbors. These distortions activate multicomponent interactions and tune the Pt electronic structure, promoting ORR intermediate conversion while suppressing component dissolution. Consequently, PtFeCoCu reaches a half‐wave potential of 0.95 V RHE and a mass activity of 3.53 A mg Pt −1 at 0.9 V RHE in ORR. In an H 2 ‐O 2 fuel cell, it delivers a high mass activity of 1.63 A mg Pt −1 at 0.9 V iR‐free , retaining 87.7% of its initial mass activity after 30,000 cycles. Our findings highlight symmetry breaking as a key driver with broad implications across multicomponent alloys.

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 (17)

X

Xinyi Shen

Clarendon Laboratory, Department of Physics, University of Oxford, Parks Road, Oxford OX1 3PU, U.K.

X

Xue Zhang

W

Wenfeng Hu

X

Xiaolin Tai

State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science

W

Wenzhi Li

Y

Yuwen Chen

M

Mengzhao Zhu

State Key Laboratory of Precision and Intelligent Chemistry National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei P. R. China

H

Huijuan Zhang

Department of Oncology The Affiliated Yantai Yuhuangding Hospital of Qingdao University Medical College Yantai China

Q

Qinghua Zhang

L

Lin Gu

Y

Yue Lin

Y

Yuen Wu

The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine

M

Mei Sun

L

Li‐Ming Yang

School of Chemistry and Chemical Engineering Huazhong University of Science and Technology Wuhan P. R. China

X

Xiaokang Liu

State Key Laboratory of Geomicrobiology and Environmental Changes, School of Earth Sciences, China University of Geosciences

L

Linlin Cao

T

Tao Yao

National Synchrotron Radiation Laboratory, State Key Laboratory of Precision and Intelligent Chemistry, School of Nuclear Science and Technology