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Anisotropic Plasmon Resonance Enables Spatially Controlled Photothermal and Photochemical Effects in Hot Carrier‐Driven Catalysis.

Authors :
Wang, Jiaqi
Zhu, Zhijie
Feng, Kai
Liu, Shuang
Zhou, Yuxuan
Urooj, Ifra
He, Jiari
Wu, Zhiyi
Shen, Jiahui
Hu, Xu
Chen, Zhijie
Dong, Xudong
Sohail, Manzar
Ma, Yanyun
Chen, Jinxing
Li, Chaoran
An, Xingda
He, Le
Source :
Chinese Journal of Chemistry. Apr2024, p1. 9p. 6 Illustrations.
Publication Year :
2024

Abstract

Comprehensive Summary Localized surface plasmon resonance has been demonstrated to provide effective photophysical enhancement mechanisms in plasmonic photocatalysis. However, it remains highly challenging for distinct mechanisms to function in synergy for a collective gain in catalysis due to the lack of spatiotemporal control of their effect. Herein, the anisotropic plasmon resonance nature of Au nanorods was exploited to achieve distinct functionality towards synergistic photocatalysis. Photothermal and photochemical effects were enabled by the longitudinal and transverse plasmon resonance modes, respectively, and were enhanced by partial coating of silica nanoshells and epitaxial growth of a reactor component. Resonant excitation leads to a synergistic gain in photothermal‐mediated hot carrier‐driven hydrogen evolution catalysis. Our approach provides important design principles for plasmonic photocatalysts in achieving spatiotemporal modulation of distinct photophysical enhancement mechanisms. It also effectively broadens the sunlight response range and increases the efficacy of distinct plasmonic enhancement pathways towards solar energy harvesting and conversion. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1001604X
Database :
Academic Search Index
Journal :
Chinese Journal of Chemistry
Publication Type :
Academic Journal
Accession number :
176803380
Full Text :
https://doi.org/10.1002/cjoc.202400177