Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach

We model and study the electronic and transport properties of a planar 2D superlattice (PSL) structure containing laterally arranged alternating ribbons of Transition Metal DiChalogenides (TMDC). Within governed effective Hamiltonian we derived adopted transfer matrix formalism to obtain dispersion...

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Main Authors: Hashemi, R., Shojaei, S., Liu, Zheng
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/164114
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1641142023-01-05T02:42:53Z Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach Hashemi, R. Shojaei, S. Liu, Zheng School of Materials Science and Engineering Engineering::Materials Planar Superlattice Electronic Properties We model and study the electronic and transport properties of a planar 2D superlattice (PSL) structure containing laterally arranged alternating ribbons of Transition Metal DiChalogenides (TMDC). Within governed effective Hamiltonian we derived adopted transfer matrix formalism to obtain dispersion relation and electronic band structure with wave functions, transmission probability and Fano spectrum. Surprisingly, spin orbit coupling has considerable opposite effects on valence bands shift in TMDC-PSL that is blue and red for k and k’ valleys, respectively. The amount of contribution of each ribbon determines the transmission spectrum and the transport feature. We observed that outside the band gap, the Fano factor changes from 1 to smaller values gradually, that indicates the ballistic transport. To give real aspect to our model, the effect of structural disorder and defect are addressed in details. Interestingly, we found that main gap is not dependent on structural disorder and electron incident angle. Our study presents an efficient way to control the key parameters in conductivity and band structure of TMDC-PSL in the view of optoelectronics applications. 2023-01-05T02:42:52Z 2023-01-05T02:42:52Z 2021 Journal Article Hashemi, R., Shojaei, S. & Liu, Z. (2021). Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach. Physica Scripta, 96(12), 125808-. https://dx.doi.org/10.1088/1402-4896/ac2104 0031-8949 https://hdl.handle.net/10356/164114 10.1088/1402-4896/ac2104 2-s2.0-85115141959 12 96 125808 en Physica Scripta © 2021 IOP Publishing Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Planar Superlattice
Electronic Properties
spellingShingle Engineering::Materials
Planar Superlattice
Electronic Properties
Hashemi, R.
Shojaei, S.
Liu, Zheng
Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
description We model and study the electronic and transport properties of a planar 2D superlattice (PSL) structure containing laterally arranged alternating ribbons of Transition Metal DiChalogenides (TMDC). Within governed effective Hamiltonian we derived adopted transfer matrix formalism to obtain dispersion relation and electronic band structure with wave functions, transmission probability and Fano spectrum. Surprisingly, spin orbit coupling has considerable opposite effects on valence bands shift in TMDC-PSL that is blue and red for k and k’ valleys, respectively. The amount of contribution of each ribbon determines the transmission spectrum and the transport feature. We observed that outside the band gap, the Fano factor changes from 1 to smaller values gradually, that indicates the ballistic transport. To give real aspect to our model, the effect of structural disorder and defect are addressed in details. Interestingly, we found that main gap is not dependent on structural disorder and electron incident angle. Our study presents an efficient way to control the key parameters in conductivity and band structure of TMDC-PSL in the view of optoelectronics applications.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Hashemi, R.
Shojaei, S.
Liu, Zheng
format Article
author Hashemi, R.
Shojaei, S.
Liu, Zheng
author_sort Hashemi, R.
title Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
title_short Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
title_full Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
title_fullStr Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
title_full_unstemmed Electronic and transport properties of TMDC planar superlattices: effective Hamiltonian approach
title_sort electronic and transport properties of tmdc planar superlattices: effective hamiltonian approach
publishDate 2023
url https://hdl.handle.net/10356/164114
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