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Direct Observation of Off-Stoichiometry-Induced Phase Transformation of 2D CdSe Quantum Nanosheets

Title
Direct Observation of Off-Stoichiometry-Induced Phase Transformation of 2D CdSe Quantum Nanosheets
Author(s)
Ma, HyeonjongKim, DongjunPark, Soo IkChoi, Back KyuPark, GisangBaek, HayeonLee, HyocheolKim, HyeongseoungYu, Jong-SungLee, Won ChulPark, JungwonYang, Jiwoong
Issued Date
2023-03
Citation
Advanced Science, v.10, no.7
Type
Article
Author Keywords
quantum nanosheetsstoichiometrytwo-dimensional nanocrystalsin situ transmission electron microscopyphase transformation
Keywords
TRANSMISSION ELECTRON-MICROSCOPYSEMICONDUCTOR NANOCRYSTALSTRANSITIONGROWTHSIZESUPPRESSIONNONVOLATILEWURTZITEDOTS
ISSN
2198-3844
Abstract
Crystal structures determine material properties, suggesting that crystal phase transformations have the potential for application in a variety of systems and devices. Phase transitions are more likely to occur in smaller crystals; however, in quantum-sized semiconductor nanocrystals, the microscopic mechanisms by which phase transitions occur are not well understood. Herein, the phase transformation of 2D CdSe quantum nanosheets caused by off-stoichiometry is revealed, and the progress of the transformation is directly observed by in situ transmission electron microscopy. The initial hexagonal wurtzite-CdSe nanosheets with atomically uniform thickness are transformed into cubic zinc blende-CdSe nanosheets. A combined experimental and theoretical study reveals that electron-beam irradiation can change the stoichiometry of the nanosheets, thereby triggering phase transformation. The loss of Se atoms induces the reconstruction of surface atoms, driving the transformation from wurtzite-CdSe(11 (Formula presented.) 0) to zinc blende-CdSe(001) 2D nanocrystals. Furthermore, during the phase transformation, unconventional dynamic phenomena occur, including domain separation. This study contributes to the fundamental understanding of the phase transformations in 2D quantum-sized semiconductor nanocrystals. © 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/17509
DOI
10.1002/advs.202205690
Publisher
Wiley-VCH Verlag
Related Researcher
  • 유종성 Yu, Jong-Sung
  • Research Interests Materials chemistry; nanomaterials; electrochemistry; carbon and porous materials; fuel cell; battery; supercapacitor; sensor and photochemical catalyst
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Appears in Collections:
Department of Energy Science and Engineering NanoMaterials Laboratory 1. Journal Articles
Department of Energy Science and Engineering Light, Salts and Water Research Group 1. Journal Articles

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