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Thermal evaporation synthesis of vertically aligned zn2sno4/zno radial heterostructured nanowires arrayoa mark
  • Han, Gillsang ;
  • Kang, Minje ;
  • Jeong, Yoojae ;
  • Lee, Sangwook ;
  • Cho, Insun
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Publication Year
2021-06-01
Publisher
MDPI AG
Citation
Nanomaterials, Vol.11
Keyword
Charge transportHeterostructured nanowires arrayInter-faceThermal evaporation synthesisZn2SnO4/ZnO
All Science Classification Codes (ASJC)
Chemical Engineering (all)Materials Science (all)
Abstract
The construction of a heterostructured nanowires array allows the simultaneous manipula-tion of the interfacial, surface, charge transport, and transfer properties, offering new opportunities to achieve multi-functionality for various applications. Herein, we developed facile thermal evaporation and post-annealing method to synthesize ternary-Zn2SnO4/binary-ZnO radially heterostructured nanowires array (HNA). Vertically aligned ZnO nanowires array (3.5 µm in length) were grown on a ZnO-nanoparticle-seeded, fluorine-doped tin oxide substrate by a hydrothermal method. Sub-sequently, the amorphous layer consisting of Zn-Sn-O complex was uniformly deposited on the surface of the ZnO nanowires via the thermal evaporation of the Zn and Sn powder mixture in vacuum, followed by post-annealing at 550◦C in air to oxidize and crystallize the Zn2SnO4 shell layer. The use of a powder mixture composed of elemental Zn and Sn (rather than oxides and carbon mixture) as an evaporation source ensures high vapor pressure at a low temperature (e.g., 700◦C) during thermal evaporation. The morphology, microstructure, and charge-transport properties of the Zn2SnO4/ZnO HNA were investigated by scanning electron microscopy, X-ray diffraction, Raman spectroscopy, transmission electron microscopy, and electrochemical impedance spectroscopy. Notably, the optimally synthesized Zn2SnO4/ZnO HNA shows an intimate interface, high surface roughness, and superior charge-separation and-transport properties compared with the pristine ZnO nanowires array.
ISSN
2079-4991
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32059
DOI
https://doi.org/10.3390/nano11061500
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Type
Article
Funding
Funding: This research was supported by the Basic Science Research Program through the National Research Foundation of Korea, funded by the Ministry of Science, ICT, and Future Planning (Grant Number NRF-2019R1A2C2002024) and the Ministry of Education (2018R1D1A1B07050694).
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Cho, In Sun 조인선
Department of Materials Science Engineering
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