Modulating Electron‐Transfer via Covalent Assembly Polyoxometalate with Photosensitizer for Efficient H <sub>2</sub> Evolution and Tandem Hydrogenation

S Shen‐Yue Xu (State Key Laboratory of Crystal Materials, Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science &amp; Engineering, School of Chemistry and Chemical Engineering Tianjin University of Technology Tianjin 300384 China) P Ping Wang S Song Guo (State Key Laboratory of Crystal Materials, Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science & Engineering) S Shuang Yao (Department of Otolaryngology Head and Neck Surgery, Beijing Tongren Hospital) C Cheng Wang T Tong‐Bu Lu (State Key Laboratory of Crystal Materials Tianjin Key Laboratory of Functional Crystal Materials Institute of Functional Crystals Tianjin University of Technology Tianjin China) Z Zhi‐Ming Zhang (State Key Laboratory of Crystal Materials Institute for New Energy Materials and Low Carbon Technologies School of Materials Science and Engineering Tianjin University of Technology Tianjin China)

Abstract

Abstract Photocatalytic hydrogen evolution efficiency is critically dependent on electron transfer between photosensitizers (PSs) and catalysts. Herein, covalent assembly of Ir‐PSs with Co 7 polyoxometalate was achieved via Schiff‐base condensation to adjust electron transfer pathways, the resulting Ir‐2@Co 7 assembly exhibits a turnover number of 2280 for H 2 evolution, ∼18 and ∼253 times higher than that of its physically mixture and Ir‐1@Co 7 , respectively. Moreover, the generated H 2 can drive tandem styrene hydrogenation under ambient conditions, achieving 99.9% ethylbenzene yield. Spectroscopic and thermodynamic analyses reveal that covalent linkage switches dominant quenching mechanism from reductive to oxidative, and dramatically enhances electron quenching rate constant by over two orders of magnitude from 2.54 × 10 9 M −1 s −1 in physical‐mixed system to 5.87 × 10 11 M −1 s −1 in the assembly. This work highlights the key role of covalent integration in promoting electron transfer, providing a general design principle for developing high‐performance H 2 evolution and tandem hydrogenation systems.

Article Details

Volume / Issue Vol. 65, Issue 5
Published January 28, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

S

Shen‐Yue Xu

State Key Laboratory of Crystal Materials, Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science &amp; Engineering, School of Chemistry and Chemical Engineering Tianjin University of Technology Tianjin 300384 China

P

Ping Wang

S

Song Guo

State Key Laboratory of Crystal Materials, Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science & Engineering

S

Shuang Yao

Department of Otolaryngology Head and Neck Surgery, Beijing Tongren Hospital

C

Cheng Wang

T

Tong‐Bu Lu

State Key Laboratory of Crystal Materials Tianjin Key Laboratory of Functional Crystal Materials Institute of Functional Crystals Tianjin University of Technology Tianjin China

Z

Zhi‐Ming Zhang

State Key Laboratory of Crystal Materials Institute for New Energy Materials and Low Carbon Technologies School of Materials Science and Engineering Tianjin University of Technology Tianjin China