Topological Orbital Hall Effect

Fuente: arXiv
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Main Authors: Wang, Baokai, Hung, Yi-Chun, Lin, Hsin, Li, Sheng, He, Rui-Hua, Bansil, Arun
Format: Preprint
Published: 2024
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_version_ 1866916464390307840
author Wang, Baokai
Hung, Yi-Chun
Lin, Hsin
Li, Sheng
He, Rui-Hua
Bansil, Arun
author_facet Wang, Baokai
Hung, Yi-Chun
Lin, Hsin
Li, Sheng
He, Rui-Hua
Bansil, Arun
contents The orbital Hall effect (OHE) is attracting recent interest due to its fundamental science implications and potential applications in orbitronics and spintronics. Unlike the spin Hall effect, the connection between the OHE and band topology is not well understood. Here we present a novel approach for understanding the OHE based on analyzing the projected orbital angular momentum (POAM) spectrum. By considering monolayers of group IV elements, we demonstrate that the Wannier charge centers of the POAM spectrum display topologically nontrivial windings. The orbital Hall conductivity is found to form a plateau within the band gap as a direct consequence of the Chern number carried by the POAM spectrum. The topological orbital Hall phase is shown to yield a new form of bulk-boundary correspondence, which features gapless states in the POAM spectrum and induces nonzero orbital textures at the boundaries that should be amenable to experimental verification through ARPES measurements. Our study presents a systematic method for investigating the topological OHE and provides a pathway for its broader exploration in two-dimensional materials.
format Preprint
id arxiv_https___arxiv_org_abs_2411_00315
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Topological Orbital Hall Effect
Wang, Baokai
Hung, Yi-Chun
Lin, Hsin
Li, Sheng
He, Rui-Hua
Bansil, Arun
Mesoscale and Nanoscale Physics
Materials Science
The orbital Hall effect (OHE) is attracting recent interest due to its fundamental science implications and potential applications in orbitronics and spintronics. Unlike the spin Hall effect, the connection between the OHE and band topology is not well understood. Here we present a novel approach for understanding the OHE based on analyzing the projected orbital angular momentum (POAM) spectrum. By considering monolayers of group IV elements, we demonstrate that the Wannier charge centers of the POAM spectrum display topologically nontrivial windings. The orbital Hall conductivity is found to form a plateau within the band gap as a direct consequence of the Chern number carried by the POAM spectrum. The topological orbital Hall phase is shown to yield a new form of bulk-boundary correspondence, which features gapless states in the POAM spectrum and induces nonzero orbital textures at the boundaries that should be amenable to experimental verification through ARPES measurements. Our study presents a systematic method for investigating the topological OHE and provides a pathway for its broader exploration in two-dimensional materials.
title Topological Orbital Hall Effect
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2411.00315