Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/174666
Title: Harmonizing plasmonic and photonic effects to boost photocatalytic H2 production over 550 mmol⋅h-1⋅gcat-1
Authors: Raja Mogan, Tharishinny
Zhang, Jiajia
Ng, Li Shiuan
Boong, Siew Kheng
Chong, Carice
Lee, Jinn-Kye
Li, Haitao
Lee, Hiang Kwee
Keywords: Chemistry
Issue Date: 2024
Source: Raja Mogan, T., Zhang, J., Ng, L. S., Boong, S. K., Chong, C., Lee, J., Li, H. & Lee, H. K. (2024). Harmonizing plasmonic and photonic effects to boost photocatalytic H2 production over 550 mmol⋅h-1⋅gcat-1. Angewandte Chemie International Edition. https://dx.doi.org/10.1002/anie.202401277
Project: RS13/20 
RG4/21 
AME-YIRG-A2084c0158 
CHI-P2022-05 
REQ0275931 
Journal: Angewandte Chemie International Edition 
Abstract: Integrating plasmonic nanoparticles with photonic crystals holds immense potential to enhance green hydrogen photosynthesis by amplifying localized electromagnetic field through generating surface plasmons and slow photons. Current plasmonic photonic designs primarily employ semiconductor-based structural backbone deposited with plasmonic nanoparticles. However, the competition between various optical phenomena in these ensembles hinders effective field enhancement rather than facilitating it. This limitation creates a formidable performance bottleneck that retards hydrogen evolution. Herein, we enhance plasmonic catalysis for efficient hydrogen evolution by effectively harmonizing plasmonic and photonic effects. This is achieved by using inert SiO2 opal as a non-photoabsorbing photonic framework. By aligning the excitation wavelengths of surface plasmons and slow photons, our optimized plasmonic photonic crystals demonstrates a remarkable H2 evolution rate of 560 mmol h-1  gAg -1 , surpassing bare plasmonic Ag nanoparticles by >106 -fold and other high-performance photocatalytic designs by 280-fold. Mechanistic studies highlight the pivotal role of the non-photoabsorbing photonic backbone in facilitating effective light confinement through the photonic effect. This in turn boosts the plasmonic field for enhanced photocatalytic H2 evolution, even without needing additional co-catalysts. Our work offers valuable insights for future design of electromagnetically hot plasmonic catalysts to achieve efficient light-to-chemical transformations in diverse energy, chemical, and environmental applications.
URI: https://hdl.handle.net/10356/174666
ISSN: 1433-7851
DOI: 10.1002/anie.202401277
Schools: School of Chemistry, Chemical Engineering and Biotechnology 
Organisations: Institute of Materials Research and Engineering, A*STAR 
Rights: © 2024 Wiley-VCH GmbH. All rights reserved. This article may be downloaded for personal use only. Any other use requires prior permission of the copyright holder. The Version of Record is available online at http://doi.org/10.1002/anie.202401277.
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:CCEB Journal Articles

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