Light‐Induced Alternating Catalysis on Single‐Atom Ruthenium Embedded in Covalent Organic Frameworks for High‐Performance Photo‐Assisted Li–O <sub>2</sub> Batteries

Z Zongqiang Sun (School of Materials Science and Engineering, Department of Geriatric Dentistry at School and Hospital of Stomatology, Peking University) J Jahan Tohtayeva (Department of Chemical Engineering Canakkale Onsekiz Mart University Canakkale Türkiye) W Wenbo Liu (Institute of Physics) Y Youxing Liu (Beijing University of Chemical Technology , , ,) B Begumhan Karapınar Koc (Department of Chemistry, College of Sciences Koç University Istanbul Türkiye) Z Zheng Lin (School of Materials Science and Engineering) Y Yachao Xu (School of Materials Science and Engineering, Department of Geriatric Dentistry at School and Hospital of Stomatology, Peking University) Z Zehao Xiao C Chenglong Sun M Mingchuan Luo (Peking University , , ,) S Sermet Koyuncu O Onder Metin S Shaojun Guo

Abstract

ABSTRACT The development of high‐efficiency cathode catalysts is crucial for advancing photo‐assisted non‐aqueous lithium–oxygen (Li–O 2 ) batteries, which leverage solar energy to reduce the high overpotential for driving oxygen reduction and evolution processes. However, the state‐of‐the‐art photo‐cathode catalysts often lack multi‐step conversion pathways that regulate interactions between complex active sites and reactive oxygen‐related intermediates within Li–O 2 battery systems. Herein, we report a new light‐induced alternating catalytic mechanism based on a single‐atom Ru‐embedded covalent organic framework assembled from a triazine‐core C3‐symmetric node and π‐extended perylene‐diimide linkers (T‐PDI), generating an ordered conjugated Ru/T‐PDI network that functions as a high‐performance photo cathode of the Li–O 2 battery. Unlike conventional photo‐assisted catalysts that operate through the single‐site activity, the Ru/T‐PDI electrode enables dynamic migration and efficient conversion of reactive oxygen species between catalytic sites across multiple selective sites. This mechanism orchestrates the multi‐step transformation process within Li–O 2 batteries, significantly enhancing catalytic efficiency of active sites and facilitating both the formation and decomposition of Li 2 O 2 products. As a result, the photo‐assisted Li–O 2 battery employing the Ru/T‐PDI cathode achieves a quite low overpotential, outstanding cycling stability and excellent rate performance. This work provides crucial insights for reaction mechanism studies and catalyst design for next‐generation light‐driven metal–oxygen batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 28, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

Z

Zongqiang Sun

School of Materials Science and Engineering, Department of Geriatric Dentistry at School and Hospital of Stomatology, Peking University

J

Jahan Tohtayeva

Department of Chemical Engineering Canakkale Onsekiz Mart University Canakkale Türkiye

W

Wenbo Liu

Institute of Physics

Y

Youxing Liu

Beijing University of Chemical Technology , , ,

B

Begumhan Karapınar Koc

Department of Chemistry, College of Sciences Koç University Istanbul Türkiye

Z

Zheng Lin

School of Materials Science and Engineering

Y

Yachao Xu

School of Materials Science and Engineering, Department of Geriatric Dentistry at School and Hospital of Stomatology, Peking University

Z

Zehao Xiao

C

Chenglong Sun

M

Mingchuan Luo

Peking University , , ,

S

Sermet Koyuncu

O

Onder Metin

S

Shaojun Guo