Atomic‐Scale Charge Channelling in Poly(triazine imide) With Cooperative Ti–Ru Sites for Efficient Visible‐Light CO <sub>2</sub> Reduction

X Xinyu Xu (State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)) M Mingyue Wang (Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences) B Bo Su (State Key Laboratory of Medical Chemical Biology and College of Pharmacy) X Xiahui Lin (College of Environment and Safety Engineering Fuzhou University Fuzhou P. R. China) H Hangyu Zhuzhang (State Key Laboratory of Chemistry for NBC Hazards Protection, College of Chemistry) X Xue Feng Lu W Wandong Xing (State Key Laboratory of Chemistry for NBC Hazards Protection, College of Chemistry) G Guigang Zhang (State Key Laboratory of Chemistry for NBC Hazards Protection, College of Chemistry) M Masakazu Anpo (State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry) S Sibo Wang

Abstract

ABSTRACT Photocatalytic CO 2 reduction using H 2 O as the electron donor provides a direct route for solar‐to‐chemical energy conversion, yet its efficiency is hindered by the lack of catalysts capable of directing charge flow and synchronizing redox kinetics. In this study, we report an atomic‐scale charge‐channelling strategy based on a spatially cooperative photocatalyst comprising Ti single atoms and Ru species anchored on crystalline poly(triazine imide) (PTI). Lattice‐substituted Ti species introduce impurity levels that broaden visible‐light absorption while serving as hole‐extraction centers for H 2 O oxidation, sustaining continuous hole flux. Concurrently, photogenerated electrons are funneled through the PTI framework to adjacent Ru sites, where CO 2 reduction to CO occurs. This cascade pathway establishes vectorial charge separation and kinetically couples the two half‐reactions, effectively suppressing charge recombination. The optimized catalyst achieves a CO evolution rate of 281.0 µmol g −1 h −1 with excellent stability. Spectroscopic investigations combined with theoretical calculations reveal the complementary roles of Ti and Ru sites in regulating charge separation, carrier utilization and reaction energetics, while identifying the key reaction intermediates. This work provides mechanistic insight into spatially coupled charge transport and offers an effective strategy for the rational design of high‐performance artificial photosynthetic systems.

Article Details

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

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

X

Xinyu Xu

State Key Laboratory of Coordination Chemistry, Chemistry and Biomedicine Innovation Center (ChemBIC)

M

Mingyue Wang

Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences

B

Bo Su

State Key Laboratory of Medical Chemical Biology and College of Pharmacy

X

Xiahui Lin

College of Environment and Safety Engineering Fuzhou University Fuzhou P. R. China

H

Hangyu Zhuzhang

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

X

Xue Feng Lu

W

Wandong Xing

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

G

Guigang Zhang

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

M

Masakazu Anpo

State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry

S

Sibo Wang