Site‐Specific Ir Single Atoms in Spinel Induce 5 <i>d</i> Spin Polarization for Enhanced Oxygen Evolution

Y Yong Wang Z Zijian Yuan (Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China) Z Zeyan Cen (Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China) S Shixiang Yu C Chengyu Li H Haoyi Tang (Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering) A Ao Cao (Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China) T Tianze Wu (School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore) X Xiao Ren (Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering) D Ding Ma

Abstract

ABSTRACT Precise control of the coordination environment of single‐atom centers is essential to reveal how local symmetry governs electronic structure and catalytic behavior. Here, we develop a Li‐assisted vacancy‐engineering strategy to selectively embed Ir single atoms into tetrahedral and octahedral sites of spinel ZnCo 2 O 4 , producing well‐defined single‐atom catalysts with precisely controlled coordination environments. Theoretical calculations and experiments reveal that octahedral incorporation induces 5 d electronic reconfiguration and spin polarization in Ir, driven by strengthened hybridization between Ir 5 d states and the surrounding Co‐O framework. This coordination‐controlled electronic state reshapes oxygen‐intermediate binding energetics, thereby enhancing intrinsic reactivity. Consequently, octahedral‐site Ir exhibits an exceptional oxygen evolution reaction (OER) mass activity of 5520  A/g Ir at 300 mV, which is 920 times higher than that of IrO 2 , and maintains stability for over 200 h in an anion‐exchange membrane electrolyzer. These findings highlight the key role of crystallographic site selection in tuning 5 d single‐atom electronic structure and offer mechanistic insight into coordination‐controlled OER reactivity.

Article Details

Volume / Issue Vol. 65, Issue 29
Published July 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yong Wang

Z

Zijian Yuan

Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China

Z

Zeyan Cen

Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China

S

Shixiang Yu

C

Chengyu Li

H

Haoyi Tang

Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering

A

Ao Cao

Beijing National Laboratory For Molecular Sciences New Cornerstone Science Laboratory College of Chemistry and Molecular Engineering Peking University Beijing China

T

Tianze Wu

School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore

X

Xiao Ren

Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering

D

Ding Ma