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안광진

An, Kwangjin
Advanced Nanocatalysis Lab.
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Enhanced hot electron generation by inverse metal–oxide interfaces on catalytic nanodiode

Author(s)
Lee, HyosunYoon, SinmyungJo, JinwoungJeon, BeomjoonHyeon, TaeghwanAn, KwangjinPark, Jeong Y.
Issued Date
2019-05
DOI
10.1039/C8FD00136G
URI
https://scholarworks.unist.ac.kr/handle/201301/25574
Fulltext
https://pubs.rsc.org/en/Content/ArticleLanding/2018/FD/C8FD00136G#!divAbstract
Citation
FARADAY DISCUSSIONS, v.214, pp.353 - 364
Abstract
Identifying the electronic behavior of metal–oxide interfaces is essential for understanding the origin of catalytic properties and for engineering catalyst structures with the desired reactivity. For a mechanistic understanding of hot electron dynamics at inverse oxide/metal interfaces, we employed a new catalytic nanodiode by combining Co3O4 nanocubes (NCs) with a Pt/TiO2 nanodiode that exhibits nanoscale metal–oxide interfaces. We show that the chemicurrent, which is well correlated with the catalytic activity, is enhanced at the inverse oxide/metal (CoO/Pt) interfaces during H2 oxidation. Based on quantitative visualization of the electronic transfer efficiency with chemicurrent yield, we show that electronic perturbation of oxide/metal interfacial sites not only promotes the generation of hot electrons, but improves catalytic activity.
Publisher
ROYAL SOC CHEMISTRY
ISSN
1359-6640
Keyword
SUPPORT INTERACTIONSCO2 HYDROGENATIONSURFACE-CHEMISTRYNANOPARTICLESOXIDATIONSELECTIVITYIMPACTLAYERSH-2RH

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