Real Space Characterization of Nonlinear Hall Effect in Confined Directions

Fuente: arXiv
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Main Authors: Luo, Sheng, Hsu, Chuang-Han, Chang, Guoqing, Bansil, Arun, Lin, Hsin, Liang, Gengchiau
Format: Preprint
Published: 2023
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_version_ 1866909122095480832
author Luo, Sheng
Hsu, Chuang-Han
Chang, Guoqing
Bansil, Arun
Lin, Hsin
Liang, Gengchiau
author_facet Luo, Sheng
Hsu, Chuang-Han
Chang, Guoqing
Bansil, Arun
Lin, Hsin
Liang, Gengchiau
contents The nonlinear Hall effect (NLHE) is a phenomenon which could produce a transverse Hall voltage in a time-reversal-invariant material. Here, we report the real space characterization of NLHE evaluated through quantum transport in TaIrTe4 nanoribbon without the explicit Berry curvature dipole (BCD) information. We first characterize the NLHE in both transverse confined directions in global-level measurement. The impact of quantum confinement in NLHE is evaluated by adjusting the width of nanoribbons. Then, the probing area is trimmed to the atomic scale to evaluate the local texture, where we discover its unique patterns among the probed atomic groups for the first time. The analysis of charge distribution reveals the connections between NLHE's local patterns and its non-centrosymmetric nature, rendering nearly an order of Hall voltage enhancement through probe positioning. Our work paves the way to expand the range of NLHE study and unveil its physics in more versatile material systems.
format Preprint
id arxiv_https___arxiv_org_abs_2308_12557
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Real Space Characterization of Nonlinear Hall Effect in Confined Directions
Luo, Sheng
Hsu, Chuang-Han
Chang, Guoqing
Bansil, Arun
Lin, Hsin
Liang, Gengchiau
Mesoscale and Nanoscale Physics
Materials Science
The nonlinear Hall effect (NLHE) is a phenomenon which could produce a transverse Hall voltage in a time-reversal-invariant material. Here, we report the real space characterization of NLHE evaluated through quantum transport in TaIrTe4 nanoribbon without the explicit Berry curvature dipole (BCD) information. We first characterize the NLHE in both transverse confined directions in global-level measurement. The impact of quantum confinement in NLHE is evaluated by adjusting the width of nanoribbons. Then, the probing area is trimmed to the atomic scale to evaluate the local texture, where we discover its unique patterns among the probed atomic groups for the first time. The analysis of charge distribution reveals the connections between NLHE's local patterns and its non-centrosymmetric nature, rendering nearly an order of Hall voltage enhancement through probe positioning. Our work paves the way to expand the range of NLHE study and unveil its physics in more versatile material systems.
title Real Space Characterization of Nonlinear Hall Effect in Confined Directions
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2308.12557