Covalent Organic Framework Photocatalysts: Decoding Linkage Chemistry in Hydrogen Peroxide Synthesis From Air and Water

Y Yongzhi Chen X Xinyu Mu (Department of Chemistry, Faculty of Science, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore) S Sailun Ji (Department of Molecular Engineering, Graduate School of Engineering) K Ke‐An Kuo (Department of Molecular Engineering Graduate School of Engineering Kyoto University Katsura Kyoto Japan) T Tie Wang Y Yuanyuan Guo Y Yusuke Tsutsui (Department of Molecular Engineering, Graduate School of Engineering, Kyoto University, Kyotodaigakukatsura, Nishikyo-ku, Kyoto 615-8510, Japan) N Ning Yan (Department of Chemical and Biomolecular Engineering) S Shu Seki (Department of Molecular Engineering, Graduate School of Engineering) X Xiong Chen (State Key Laboratory of Chemistry for NBC Hazards Protection, College of Chemistry) D Donglin Jiang (Department of Chemistry, Faculty of Science, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore)

Abstract

ABSTRACT Covalent organic frameworks (COFs) provide a polymer platform for exploring covalent linkages to design ordered skeletal and porous architectures. However, the role of linkages in controlling structural and functional evolutions remains to be well explored. In this study, we reported hexaphenyltriphenylene COF photocatalysts constructed with ketazine or azine linkages that differ by a single pinpoint methyl substituent, enabling a controlled interrogation of linkage chemistry. Unexpectedly, the ketazine linkage enhances water uptake, accelerates transport, and directs water confinement within trigonal pores. Simultaneously, it modulates the π‐electronic structure through hyperconjugation and inductive/resonance effects, extends light absorption, lowers exciton binding energy, prolongs charge‐separated lifetimes, and promotes balanced charge transport. These synergistic structural and electronic evolutions translate into exceptional photocatalysis for hydrogen peroxide production from air and water under ambient conditions. Ketazine‐HPTP‐COF achieves a production rate of 8.17 mmol g −1  h −1 with an apparent quantum yield of 15.1% at 420 nm, outperforming azine‐linked, amorphous, and other photocatalysts. The system operates under sunlight, enabling scalable production, and maintains activity across tap water, rainwater, and seawater. Mechanistic studies reveal dense yet spatially resolved photocatalytic sites, where linkage sites mediate oxygen reduction and knot units drive water oxidation, promoting photosynthesis through efficient charge and mass transport.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 08, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

Y

Yongzhi Chen

X

Xinyu Mu

Department of Chemistry, Faculty of Science, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore

S

Sailun Ji

Department of Molecular Engineering, Graduate School of Engineering

K

Ke‐An Kuo

Department of Molecular Engineering Graduate School of Engineering Kyoto University Katsura Kyoto Japan

T

Tie Wang

Y

Yuanyuan Guo

Y

Yusuke Tsutsui

Department of Molecular Engineering, Graduate School of Engineering, Kyoto University, Kyotodaigakukatsura, Nishikyo-ku, Kyoto 615-8510, Japan

N

Ning Yan

Department of Chemical and Biomolecular Engineering

S

Shu Seki

Department of Molecular Engineering, Graduate School of Engineering

X

Xiong Chen

State Key Laboratory of Chemistry for NBC Hazards Protection, College of Chemistry

D

Donglin Jiang

Department of Chemistry, Faculty of Science, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore