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Jeong, Hu Young
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Epitaxial n-ZnO/MoS2/p-GaN Heterostructure Light-Emitting Diodes

Author(s)
Rahmatulloh, ImasdaDalayoan, Daryll J. C.Ali, AsadShin, SoobeomNguyen, Anh T. D.Kwon, TaenamBehera, SatyabratLee, JaehyunKim, HeekyeongJeong, Hu YoungNamgung, SeonYi, Gyu-ChulChung, Kunook
Issued Date
2026-04
DOI
10.1021/acs.nanolett.5c06430
URI
https://scholarworks.unist.ac.kr/handle/201301/91637
Fulltext
https://pubs.acs.org/doi/10.1021/acs.nanolett.5c06430?src=getftr&utm_source=clarivate&getft_integrator=clarivate
Citation
NANO LETTERS
Abstract
We investigated an epitaxial strategy for fabricating MoS2 light-emitting diodes (LEDs). A full-coverage MoS2 active layer was grown on p-type GaN, and n-type ZnO nanorods were then vertically aligned on the MoS2 to form a p-n junction with negligible damage to the MoS2. All materials have nearly matched hexagonal structures, enabling single-crystal alignment. Although the continuous MoS2 film formed multiple layers (MLs), the ZnO/MoS2/GaN heterostructure yielded favorable optical characteristics of the ML-MoS2, including internal quantum efficiency comparable to that of the single-layer MoS2. The ZnO/MoS2/GaN LED exhibited stable A and B exciton emissions, which imply direct bandgap transition with spin-orbit coupling. Without mechanically exfoliated or transferred 2D films, this epitaxial approach satisfies the key requirements for fabricating 2D-based optoelectronic and quantum light sources. The strength of epitaxy, such as large-scale scalability and multiple quantum-well formation, will further advance 2D optoelectronics, making them more practical and efficient.
Publisher
AMER CHEMICAL SOC
ISSN
1530-6984
Keyword (Author)
light-emitting diodemolybdenum disulfideepitaxial heterostructuregallium nitridezincoxidespin-orbit coupling
Keyword
MOS2MONOLAYERFILMSPHOTOLUMINESCENCEOPTOELECTRONICSEMISSION

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