TY - JOUR
T1 - Engineering Plasmon-Semiconductor Coupling in Spatially Ordered Supraparticles for Boosted Photocatalytic Hydrogen Evolution
AU - Fu, Wenlong
AU - Geng, Zhiyong
AU - Jiang, Biao
AU - Huang, Jie
AU - Dong, Shenghe
AU - Liu, Maochang
AU - Wang, Peng peng
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Organizing distinct nanocomponents into spatially ordered architectures offers a powerful strategy to regulate light-matter interactions and enhance photocatalytic efficiency, yet remains largely underexplored. Herein, we report the bottom-up construction of colloidal supraparticles (SPs) comprising photocatalytic CdS-based and plasmonic Au nanoparticles (NPs), forming spatially ordered hybrid superstructures with tunable Au NP size and compositional ratios. The optimized CdSe@CdS-Au SPs achieve a hydrogen evolution rate of 160 mmol h−1 g−1 under visible light, representing a significant enhancement over the mixture of the same components and outperforming previously reported similar NP-based systems. Ultrafast spectroscopic analyses combined with finite element simulations reveal that spatial confinement facilitates plasmon-mediated interactions between Au and CdSe@CdS NPs, leading to enhanced plasmonic local electric fields and efficient plasmon-induced resonance energy transfer from Au to the semiconductor domains. These photophysical advantages collectively account for the markedly improved photocatalytic activity. This study demonstrates nanoscale spatial engineering as a versatile strategy for tailoring hybrid architectures toward high-efficiency solar-to-chemical energy conversion.
AB - Organizing distinct nanocomponents into spatially ordered architectures offers a powerful strategy to regulate light-matter interactions and enhance photocatalytic efficiency, yet remains largely underexplored. Herein, we report the bottom-up construction of colloidal supraparticles (SPs) comprising photocatalytic CdS-based and plasmonic Au nanoparticles (NPs), forming spatially ordered hybrid superstructures with tunable Au NP size and compositional ratios. The optimized CdSe@CdS-Au SPs achieve a hydrogen evolution rate of 160 mmol h−1 g−1 under visible light, representing a significant enhancement over the mixture of the same components and outperforming previously reported similar NP-based systems. Ultrafast spectroscopic analyses combined with finite element simulations reveal that spatial confinement facilitates plasmon-mediated interactions between Au and CdSe@CdS NPs, leading to enhanced plasmonic local electric fields and efficient plasmon-induced resonance energy transfer from Au to the semiconductor domains. These photophysical advantages collectively account for the markedly improved photocatalytic activity. This study demonstrates nanoscale spatial engineering as a versatile strategy for tailoring hybrid architectures toward high-efficiency solar-to-chemical energy conversion.
KW - photocatalytic HER performance
KW - plasmonic-semiconductor NP assembly
KW - resonance energy transfer
KW - spatially ordered superstructure
KW - synergic enhanced LSPR effect
UR - https://www.scopus.com/pages/publications/105036719312
U2 - 10.1002/anie.8359659
DO - 10.1002/anie.8359659
M3 - 文章
AN - SCOPUS:105036719312
SN - 1433-7851
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
ER -