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Radial multi-quantum well ZnO nanorod arrays for nanoscale ultraviolet light-emitting diodes

Title
Radial multi-quantum well ZnO nanorod arrays for nanoscale ultraviolet light-emitting diodes
Author(s)
Kang, Jang-WonKim, Byeong-HyeokSong, HuiJo, Yong-RyunHong, Sang-HyunJung, Gun YoungKim, Bong-JoongPark, Seong-JuCho, Chang-Hee
Issued Date
2018-08
Citation
Nanoscale, v.10, no.31, pp.14812 - 14818
Type
Article
Keywords
MULTIPLE-QUANTUM-WELLSAQUEOUS-SOLUTIONZINC-OXIDEEMISSIONGROWTHFILMSHETEROSTRUCTURESNANOSTRUCTURESNANOWIRES
ISSN
2040-3364
Abstract
Since semiconducting ZnO has attractive properties such as wide bandgap and large exciton binding energy, it has motivated us to realize efficient ultraviolet (UV) light-emitting diodes (LEDs). Furthermore, facile growth of ZnO nanostructures has triggered numerous research studies to examine them as nanoscale building blocks for optoelectronic devices. Here, we demonstrate the growth of ZnO-based core-shell p-n homojunction nanorod arrays with radial MgZnO/ZnO multiple quantum wells (MQWs) and report the characteristics of a core-shell ZnO nanorod LED. The shell layers of MgZnO/ZnO MQWs and p-type antimony-doped MgZnO were epitaxially grown on the surface of ZnO core nanorod arrays. By introducing the radial MQWs, the photoluminescence intensity was greatly increased by 4 times, compared to that of the bare ZnO nanorod array, suggesting that the core-shell MQWs can be used to realize the nanoscale ZnO LEDs with high internal quantum efficiency. As the injection current increased, the EL intensity of UV emission at 375 nm from the MgZnO/ZnO MQWs strongly increased without shifting of the emission peak because of the non-polar nature of MQWs grown on the side walls of the ZnO nanorods. These results highlight the potential of an integrated nanoscale UV light emitter in various photonic devices. © The Royal Society of Chemistry.
URI
http://hdl.handle.net/20.500.11750/9243
DOI
10.1039/c8nr03711f
Publisher
Royal Society of Chemistry
Related Researcher
  • 조창희 Cho, Chang-Hee
  • Research Interests Semiconductor; Nanophotonics; Light-Matter Interaction
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Appears in Collections:
Department of Physics and Chemistry Future Semiconductor Nanophotonics Laboratory 1. Journal Articles

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