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Department of Physics and Chemistry
Semiconductor Quantum Photonics Lab.
1. Journal Articles
Enhanced quantum confinement in tensile-strained silicon nanocrystals embedded in silicon nitride
Cho, Chang-Hee
;
Kang, Jang-Won
;
Park, Il-Kyu
;
Park, Seong-Ju
Department of Physics and Chemistry
Semiconductor Quantum Photonics Lab.
1. Journal Articles
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Title
Enhanced quantum confinement in tensile-strained silicon nanocrystals embedded in silicon nitride
Issued Date
2017-12
Citation
Cho, Chang-Hee. (2017-12). Enhanced quantum confinement in tensile-strained silicon nanocrystals embedded in silicon nitride. Current Applied Physics, 17(12), 1616–1621. doi: 10.1016/j.cap.2017.09.005
Type
Article
Author Keywords
Quantum confinement
;
Semiconductor nanocrystal
;
Tensile strain
;
Capacitance spectroscopy
Keywords
SI NANOCRYSTALS
;
ELECTRONIC STATES
;
ROOM-TEMPERATURE
;
POROUS SILICON
;
DOTS
;
PHOTOLUMINESCENCE
;
EMISSION
;
MEMORY
;
LUMINESCENCE
;
DEPOSITION
ISSN
1567-1739
Abstract
Here, we report that the tensile strain in silicon nanocrystals embedded in silicon nitride significantly changes the size-dependent evolution of the conduction and valence energy levels, compared with strain-free silicon nanocrystals. Using capacitance spectroscopy, the quantum-confined energy shifts in the conduction and valence levels were identified as ΔEC(eV) = 11.7/d2, and ΔEV(eV) = −4.5/d2, where d is the mean diameter of the silicon nanocrystals in nanometers. These findings indicated that the tensile strain in the silicon nanocrystals significantly increased the quantum confinement, by a factor of 3.3 in the conduction levels, and by a factor of 1.8 in the valence levels. © 2017 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/4564
DOI
10.1016/j.cap.2017.09.005
Publisher
한국물리학회
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Cho, Chang-Hee
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Department of Physics and Chemistry
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