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Polymorphic Ga2S3 nanowires: phase-controlled growth and crystal structure calculations

Title
Polymorphic Ga2S3 nanowires: phase-controlled growth and crystal structure calculations
Author(s)
Park, KidongKim, DoyeonDebela, Tekalign TerfaBoujnah, MouradZewdie, Getasew MulualemSeo, JaeminKwon, Ik SeonKwak, In HyeJung, MinkyungPark, JeungheeKang, Hong Seok
Issued Date
2022-07
Citation
Nanoscale Advances, v.4, no.15, pp.3218 - 3225
Type
Article
Keywords
TOTAL-ENERGY CALCULATIONSALPHA-GA2S3METALS
ISSN
2516-0230
Abstract
The polymorphism of nanostructures is of paramount importance for many promising applications in high-performance nanodevices. We report the chemical vapor deposition synthesis of Ga2S3 nanowires (NWs) that show the consecutive phase transitions of monoclinic (M) -> hexagonal (H) -> wurtzite (W) -> zinc blende (C) when lowering the growth temperature from 850 to 600 degrees C. At the highest temperature, single-crystalline NWs were grown in the thermodynamically stable M phase. Two types of H phase exhibited 1.8 nm periodic superlattice structures owing to the distinctively ordered Ga sites. They consisted of three rotational variants of the M phase along the growth direction ([001](M) = [0001](H/W)) but with different sequences in the variants. The phases shared the same crystallographic axis within the NWs, producing novel core-shell structures to illustrate the phase evolution. The relative stabilities of these phases were predicted using density functional theory calculations, and the results support the successive phase evolution. Photodetector devices based on the p-type M and H phase Ga2S3 NWs showed excellent UV photoresponse performance. © 2022 The Author(s).
URI
http://hdl.handle.net/20.500.11750/17318
DOI
10.1039/d2na00265e
Publisher
Royal Society of Chemistry
Related Researcher
  • 정민경 Jung, Minkyung
  • Research Interests nanoelectronics; quantum transport; quantum physics; qubit; condensed matter physics
Files in This Item:
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000821455200001.pdf

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Appears in Collections:
Division of Nanotechnology 1. Journal Articles
Division of Nanotechnology Quantum Nanoelectronic Devices Lab 1. Journal Articles

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