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Autori principali: Ren, Chao-Jie, Gong, Zhao, Mu, Hui-Ying, An, Xing-Tao, Yao, Wang, Liu, Jian-Jun
Natura: Preprint
Pubblicazione: 2023
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Accesso online:https://arxiv.org/abs/2309.16268
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author Ren, Chao-Jie
Gong, Zhao
Mu, Hui-Ying
An, Xing-Tao
Yao, Wang
Liu, Jian-Jun
author_facet Ren, Chao-Jie
Gong, Zhao
Mu, Hui-Ying
An, Xing-Tao
Yao, Wang
Liu, Jian-Jun
contents Bilayer moiré structures have attracted significant attention recently due to their spatially modulated layer degrees of freedom. However, the layer-dependent transport mechanism in the moiré structures is still a problem to be explored. Here we investigate the layer-dependent transport properties regulated by the strain, the interlayer bias and the number of moiré periods in a strained moiré homobilayer TMDs nanoribbon based on low-energy efficient models. The charge carriers can pass perfectly through the scattering region with the moiré potential. While, it is noted that the overall transmission coefficient is mainly contributed from either intralayer or interlayer transmissions. The transition of transport mechanism between intralayer and interlayer transmissions can be achieved by adjusting the strain. The intralayer transmissions are suppressed and one of the interlayer transmissions can be selected by a vertical external electric field, which can cause a controllable layer polarization. Moreover, the staggered intralayer and interlayer minigaps are formed as the number of moiré periods increases in the scattering region due to the overlap of the wave functions in two adjacent moiré periods. Our finding points to an opportunity to realize layer functionalities by the strain and electric field.
format Preprint
id arxiv_https___arxiv_org_abs_2309_16268
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Layer-dependent transport properties in the Moiré of strained homobilayer transition metal dichalcogenides
Ren, Chao-Jie
Gong, Zhao
Mu, Hui-Ying
An, Xing-Tao
Yao, Wang
Liu, Jian-Jun
Mesoscale and Nanoscale Physics
Bilayer moiré structures have attracted significant attention recently due to their spatially modulated layer degrees of freedom. However, the layer-dependent transport mechanism in the moiré structures is still a problem to be explored. Here we investigate the layer-dependent transport properties regulated by the strain, the interlayer bias and the number of moiré periods in a strained moiré homobilayer TMDs nanoribbon based on low-energy efficient models. The charge carriers can pass perfectly through the scattering region with the moiré potential. While, it is noted that the overall transmission coefficient is mainly contributed from either intralayer or interlayer transmissions. The transition of transport mechanism between intralayer and interlayer transmissions can be achieved by adjusting the strain. The intralayer transmissions are suppressed and one of the interlayer transmissions can be selected by a vertical external electric field, which can cause a controllable layer polarization. Moreover, the staggered intralayer and interlayer minigaps are formed as the number of moiré periods increases in the scattering region due to the overlap of the wave functions in two adjacent moiré periods. Our finding points to an opportunity to realize layer functionalities by the strain and electric field.
title Layer-dependent transport properties in the Moiré of strained homobilayer transition metal dichalcogenides
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2309.16268