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Effect of Nanoparticle Size on Plasmon-Driven Reaction Efficiency

Authors
Kim, SeokheonLee, SungwoonYoon, Sangwoon
Issue Date
26-Jan-2022
Publisher
AMER CHEMICAL SOC
Keywords
plasmon-driven reaction; hot charge carrier; perfect gold nanosphere; nanoparticle-on-mirror; SERS
Citation
ACS APPLIED MATERIALS & INTERFACES, v.14, no.3, pp 4163 - 4169
Pages
7
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
14
Number
3
Start Page
4163
End Page
4169
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/54762
DOI
10.1021/acsami.1c21441
ISSN
1944-8244
1944-8252
Abstract
Hot electron chemistry is of paramount significance because of its applicability to photocatalytic reactions, solar energy conversion, and waste decomposition. The nonradiative decay of excited plasmons in gold nanoparticles (AuNPs) generates highly energetic nonthermal electrons and holes that can induce chemical reactions when transferred to nearby molecules. In this study, we explore the relationship between AuNP size (26-133 nm) and the plasmon-induced reaction yield. To isolate the size from other structural parameters, we prepare perfectly round gold nanospheres (AuNSs) with narrow size distributions. The use of a nanoparticle-on-mirror configuration, in which the reactant molecules (4-mercaptobenzoic acid) are positioned in nanogaps between the AuNSs and a Au film, promotes the generation of hot carriers and allows the highly sensitive detection of the reaction products (benzenethiol) using surface-enhanced Raman spectroscopy. We show that the reaction yield increases as the AuNS size increases up to 94 nm and then decreases for larger AuNSs. This peculiar A-shaped size-dependent reactivity can be explained by considering both the plasmonic absorption efficiency of AuNSs and the decay rate of plasmons via electron-surface scattering. The product of the calculated absorption cross section and the inverse of the AuNS size reproduces our experimental results remarkably well. These findings will contribute to the design of highly efficient plasmonic photocatalysts and photovoltaic devices.
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자연과학대학 (화학과)
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