Optical Switching of Catalytic Pathways for Hydrogen Generation via Light‐Handedness Control on Chiral Nanostructures

Q Qingli Wang J Jiahong Liu S Shouyuan Li (MOE Key Laboratory of Cluster Science, MIIT Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, School of Chemistry and Chemical Engineering, School of Materials Science & Engineering) S Shuaikun Ji (School of Chemistry and Chemical Engineering Beijing Institute of Technology No. 5 South Zhongguancun Street, Haidian District Beijing 100081 China) C Caiwei Zhang (State Key Laboratory of Extreme Photonics and Instrumentation, Zhejiang Key Laboratory of Excited-State Energy Conversion and Energy Storage, Department of Chemistry) J Junting Wang (School of Chemistry and Chemical Engineering Beijing Institute of Technology No. 5 South Zhongguancun Street, Haidian District Beijing 100081 China) J Jiatao Zhang (MOE Key Laboratory of Cluster Science, MIIT Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, School of Chemistry and Chemical Engineering, School of Materials Science & Engineering) Y Yiou Wang (School of Interdisciplinary Science)

Abstract

Abstract Precise optical control over catalytic pathways remains a major challenge in solar‐driven hydrogen production. Here, we report a reversible light‐handedness‐dependent switching mechanism between photocatalysis and photothermal catalysis using a standard Au@CdS nanocatalyst functionalized with chiral cysteine ligands. The switching behavior is governed by the interplay of chemical chirality and circularly polarized light, mediated by the chirality‐induced spin selectivity effect. When the handedness of circularly polarized light matches the catalyst's chirality, spin‐polarized carriers are efficiently transferred, favoring photocatalysis. In contrast, mismatched conditions suppress charge transfer, enhance recombination, and induce localized heating, shifting the reaction toward photothermal catalysis. Tuning the handedness of circularly polarized light to mismatch the catalyst chirality induces a significant photothermal effect, with temperatures reaching 343 K and hydrogen evolution rates of up to 4.8 mmol g −1 h −1 , doubling the performance in the matched case. This study introduces a light‐handedness‐controlled catalytic switch that enables dynamic modulation between two reaction modes using the same chiral catalyst, advancing our mechanistic understanding of spin‐dependent photothermal phenomena and establishing a versatile platform for optically tunable solar fuel production. The interaction of chemical and optical chirality offers a novel approach to designing next‐generation photocatalysts that can be tailored for energy conversion.

Article Details

Volume / Issue Vol. 64, Issue 52
Published December 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

Q

Qingli Wang

J

Jiahong Liu

S

Shouyuan Li

MOE Key Laboratory of Cluster Science, MIIT Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, School of Chemistry and Chemical Engineering, School of Materials Science & Engineering

S

Shuaikun Ji

School of Chemistry and Chemical Engineering Beijing Institute of Technology No. 5 South Zhongguancun Street, Haidian District Beijing 100081 China

C

Caiwei Zhang

State Key Laboratory of Extreme Photonics and Instrumentation, Zhejiang Key Laboratory of Excited-State Energy Conversion and Energy Storage, Department of Chemistry

J

Junting Wang

School of Chemistry and Chemical Engineering Beijing Institute of Technology No. 5 South Zhongguancun Street, Haidian District Beijing 100081 China

J

Jiatao Zhang

MOE Key Laboratory of Cluster Science, MIIT Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, School of Chemistry and Chemical Engineering, School of Materials Science & Engineering

Y

Yiou Wang

School of Interdisciplinary Science