Dissipation Enhanced Unidirectional Transport in Topological Systems

Fuente: arXiv
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Main Authors: Lu, Ming, Liu, Xue-Zhu, Li, Hailong, Zhang, Zhi-Qiang, Liu, Jie, Xie, X. C.
Format: Preprint
Published: 2023
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_version_ 1866909155911008256
author Lu, Ming
Liu, Xue-Zhu
Li, Hailong
Zhang, Zhi-Qiang
Liu, Jie
Xie, X. C.
author_facet Lu, Ming
Liu, Xue-Zhu
Li, Hailong
Zhang, Zhi-Qiang
Liu, Jie
Xie, X. C.
contents Dissipation is a common occurrence in real-world systems and is generally considered to be detrimental to transport. In this study, we examine the transport properties of a narrow quantum anomalous Hall system with dissipation applied on one edge. When the Fermi level resides within the hybridization gap, we find that while transport is suppressed on one edge, it is significantly enhanced on the other. We reveal that this enhancement arises from dissipation-induced gap closure, which is deeply rooted in the point gap topology of the system, resulting in a reduction of the decaying coefficient. When the dissipation is very large, we find that the low-energy physics is nearly indistinguishable from a narrower system, whose dissipation amplitude is inversely proportional to that of the original one. To get more physical intuition, we demonstrate that the low-energy physics can be well captured by a pair of coupled counter-propagating chiral edge states, one of which has a modified group velocity and an effective dissipation. We also briefly discuss the possible experimental realizations of this enhanced unidirectional transport.
format Preprint
id arxiv_https___arxiv_org_abs_2311_09534
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Dissipation Enhanced Unidirectional Transport in Topological Systems
Lu, Ming
Liu, Xue-Zhu
Li, Hailong
Zhang, Zhi-Qiang
Liu, Jie
Xie, X. C.
Mesoscale and Nanoscale Physics
Dissipation is a common occurrence in real-world systems and is generally considered to be detrimental to transport. In this study, we examine the transport properties of a narrow quantum anomalous Hall system with dissipation applied on one edge. When the Fermi level resides within the hybridization gap, we find that while transport is suppressed on one edge, it is significantly enhanced on the other. We reveal that this enhancement arises from dissipation-induced gap closure, which is deeply rooted in the point gap topology of the system, resulting in a reduction of the decaying coefficient. When the dissipation is very large, we find that the low-energy physics is nearly indistinguishable from a narrower system, whose dissipation amplitude is inversely proportional to that of the original one. To get more physical intuition, we demonstrate that the low-energy physics can be well captured by a pair of coupled counter-propagating chiral edge states, one of which has a modified group velocity and an effective dissipation. We also briefly discuss the possible experimental realizations of this enhanced unidirectional transport.
title Dissipation Enhanced Unidirectional Transport in Topological Systems
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2311.09534