Fluorine‐Mediated Engineering of Stable High‐Valence Single‐Atom Catalysts

D Defeng Qi (Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China) H Hao Zhang G Gonglei Shao (Interdisciplinary Research Center For Sustainable Energy Science and Engineering (IRC4SE2) School of Chemical Engineering Zhengzhou University Zhengzhou P.R. China) C Chaolong Wang Y Yubin Peng (Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China) H Haozhi Wang (State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study and National Center for Translational Medicine) Y Yanshuai Li (Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China) H Huile Jin (Key Laboratory of Carbon Materials of Zhejiang Province, College of Chemistry and Materials Engineering) J Jun Luo S Shun Wang (Department of Mathematics) J Jie Xu Y Yifei Yuan (College of Chemistry and Materials Engineering)

Abstract

ABSTRACT High‐valence single‐atom catalysts (HVSACs) generally exhibit superior catalytic activity owing to the fast electron transfer efficiency between HVSACs and their supportive substrate. Nevertheless, the thermodynamically unstable HVSACs are prone to spontaneous aggregation during their conventional synthesis processes, largely limiting their practical application demanding long‐term stability. Herein, we demonstrate a universal approach to synthesize stable HVSACs by incorporating high‐electronegativity fluorine (F) atoms to directly coordinate with the targeted metal atoms (M) of HVSACs on nitrogen‐carbon supports. As a result, an asymmetric planar M‐N 2 F 2 structure is introduced, which boosts asymmetric polarized spin between M and F atoms with M stabilized at their high‐spin and high‐valence state. Leveraging this motif, we further demonstrate its high universality as a promising synthetic approach by obtaining stable HVSACs for 22 individual metal elements. Using high‐valence Mn single‐atom as a model system, the resulting MnN 2 F 2 catalyst exhibits not only high activity but also superior durability in both the oxygen reduction reaction (ORR) and practical Zn–air batteries, outperforming conventional MnN 4 single atoms.

Article Details

Volume / Issue Vol. 65, Issue 17
Published April 20, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

D

Defeng Qi

Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China

H

Hao Zhang

G

Gonglei Shao

Interdisciplinary Research Center For Sustainable Energy Science and Engineering (IRC4SE2) School of Chemical Engineering Zhengzhou University Zhengzhou P.R. China

C

Chaolong Wang

Y

Yubin Peng

Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China

H

Haozhi Wang

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study and National Center for Translational Medicine

Y

Yanshuai Li

Key Lab of Advanced Energy Storage and Conversion College of Chemistry and Materials Engineering Wenzhou University Wenzhou P.R. China

H

Huile Jin

Key Laboratory of Carbon Materials of Zhejiang Province, College of Chemistry and Materials Engineering

J

Jun Luo

S

Shun Wang

Department of Mathematics

J

Jie Xu

Y

Yifei Yuan

College of Chemistry and Materials Engineering