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Au@Cu 2 O Core-Shell and Au@Cu 2 Se Yolk-Shell Nanocrystals as Promising Photocatalysts in Photoelectrochemical Water Splitting and Photocatalytic Hydrogen Production.

Ting-Hsuan LaiChun-Wen TsaoMei-Jing FangJhen-Yang WuYu-Peng ChangYi-Hsuan ChiuPing-Yen HsiehMing-Yu KuoKao-Der ChangYung-Jung Hsu
Published in: ACS applied materials & interfaces (2022)
In this work, we demonstrated the practical use of Au@Cu 2 O core-shell and Au@Cu 2 Se yolk-shell nanocrystals as photocatalysts in photoelectrochemical (PEC) water splitting and photocatalytic hydrogen (H 2 ) production. The samples were prepared by conducting a sequential ion-exchange reaction on a Au@Cu 2 O core-shell nanocrystal template. Au@Cu 2 O and Au@Cu 2 Se displayed enhanced charge separation as the Au core and yolk can attract photoexcited electrons from the Cu 2 O and Cu 2 Se shells. The localized surface plasmon resonance (LSPR) of Au, on the other hand, can facilitate additional charge carrier generation for Cu 2 O and Cu 2 Se. Finite-difference time-domain simulations were carried out to explore the amplification of the localized electromagnetic field induced by the LSPR of Au. The charge transfer dynamics and band alignment of the samples were examined with time-resolved photoluminescence and ultraviolet photoelectron spectroscopy. As a result of the improved interfacial charge transfer, Au@Cu 2 O and Au@Cu 2 Se exhibited a substantially larger photocurrent of water reduction and higher photocatalytic activity of H 2 production than the corresponding pure counterpart samples. Incident photon-to-current efficiency measurements were conducted to evaluate the contribution of the plasmonic effect of Au to the enhanced photoactivity. Relative to Au@Cu 2 O, Au@Cu 2 Se was more suited for PEC water splitting and photocatalytic H 2 production by virtue of the structural advantages of yolk-shell architectures. The demonstrations from the present work may shed light on the rational design of sophisticated metal-semiconductor yolk-shell nanocrystals, especially those comprising metal selenides, for superior photocatalytic applications.
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