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Combinatorial selective synthesis and excitation experiments for quantitative analysis of effects of Au on a semiconductor photocatalyst

Title
Combinatorial selective synthesis and excitation experiments for quantitative analysis of effects of Au on a semiconductor photocatalyst
Author(s)
Ahn, YongdeokPark, JiseongPark, MinsooJin, SiwooJo, WoohyunKim, JeonghoCho, Seung HwanSeo, Daeha
Issued Date
2022-09
Citation
Chem, v.8, no.9, pp.2485 - 2497
Type
Article
Author Keywords
SDG6: Clean water and sanitationSDG9: Industry innovation and infrastructureZ-schemeAu nanoparticleCdSCu2Oheterogeneous catalysissingle-particle imagingsurface plasmon resonancesystems chemistryinterband excitationphotocatalysis
Keywords
REAL-TIME OBSERVATIONHOT-ELECTRON TRANSFERGOLD NANOPARTICLESCHARGE-TRANSFERENERGY-TRANSFERMETALNANOSTRUCTURESABSORPTIONCONVERSIONPROBE
ISSN
2451-9294
Abstract
Despite its chemical stability, Au can significantly augment the catalytic properties of heterogeneous photocatalysts owing to its excellent optical properties in the visible region and localized surface plasmon resonance at the nanometer scale. However, experimental demonstration and quantitation of Au-semiconductor electron/energy-transfer pathways remain challenging. Herein, we report an optical microscopy-based combinatorial synthesis and excitation strategy to study Au@Cu2O plasmonic nanocatalysts under light irradiation at the single-particle level. Moreover, we studied the reaction kinetics of the hybridized catalyst, a property that is often difficult to investigate among the other parameters of molecular transport, and measured the individual contributions of the plasmon and excitation effects toward the intrinsic catalytic efficiency. Based on this, we propose an electron-transfer mechanism for Au-semiconductor nanoparticles. This simple and systematic strategy is a better alternative to the conventional electron microscopy technique and aids in investigating chemical reactions at the single-molecule and single-particle level. © 2022 Elsevier Inc.
URI
http://hdl.handle.net/20.500.11750/17045
DOI
10.1016/j.chempr.2022.06.004
Publisher
Cell Press
Related Researcher
  • 서대하 Seo, Daeha
  • Research Interests Synthetic Chemistry of Nanomaterials; Biophysics; Cell biology
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Department of Physics and Chemistry SMALL LAB(Single Molecule Approaches to ceLL Lab) 1. Journal Articles

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