High‐Entropy Catalyst Activated Molecular Oxygen for Oxidative Coupling Under Ambient Conditions

R Run‐Long Qi (College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China) Z Zhen Guo (CAS Key Lab of Bio-Medical Diagnostics) Y Yifan Li Y Ya‐Fei Ba (College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China) X Xiaotong Xiong T Tao Wei (School of Chemical Engineering and Technology) M Meng Dan (College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China)

Abstract

ABSTRACT Molecular oxygen (O 2 ) activation to generate reactive oxygen species (ROS) underpins catalytic oxidative coupling processes, yet conventional methods rely on external energy inputs that hinder sustainability. Here, we first demonstrate that the multielement synergistic nonnoble high‐entropy sulfide nanocrystal (HESNCs) with rich self‐generated lattice distortions enables spontaneous oxygen (O 2 ) activation to generate superoxide radicals (•O 2 − ) under ambient conditions, driving diverse oxidative coupling reactions (S─N, C─S, C─N) with high catalytic activity and exceptional stability (> 300 days). Meanwhile, this HESNCs‐driven field‐free catalytic protocol achieves pharmaceutical synthesis with excellent yields (> 90%), scalable to mol‐scale production, showing great potential for industrial applications. The experimental and computational analyses reveal that severe intrinsic lattice distortions in HESNCs tailor d‐band centers and reinforce Pauli repulsion, enabling electron transfer from organic donors (e.g., amines) to O 2 to produce •O 2 − and donor radicals (Don•). Subsequent •O 2 − ‐induced substrate oxidation to form coupling‐active intermediates (Sub•), which combine with Don• to yield oxidative coupling products while reducing •O 2 − to water. Our work establishes a new “electron donor‐assisted high‐entropy catalysts (HECs)‐mediated” ambient‐condition O 2 activation paradigm for realizing oxidative coupling reactions without external energy input.

Article Details

Volume / Issue Vol. 1, Issue 1
Published May 11, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

R

Run‐Long Qi

College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China

Z

Zhen Guo

CAS Key Lab of Bio-Medical Diagnostics

Y

Yifan Li

Y

Ya‐Fei Ba

College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China

X

Xiaotong Xiong

T

Tao Wei

School of Chemical Engineering and Technology

M

Meng Dan

College of Materials Science & Engineering Taiyuan University of Technology Taiyuan P.R. China