Spin Hall conductivity in Bi$_{1-x}$Sb$_x$ as an experimental test of bulk-boundary correspondence

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Main Authors: Ou, Yongxi, Yanez-Parreño, Wilson, Huang, Yu-sheng, Ghosh, Supriya, Şahin, Cüneyt, Stanley, Max, Santhosh, Sandra, Islam, Saurav, Richardella, Anthony, Mkhoyan, K. Andre, Flatté, Michael E., Samarth, Nitin
Format: Preprint
Published: 2023
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author Ou, Yongxi
Yanez-Parreño, Wilson
Huang, Yu-sheng
Ghosh, Supriya
Şahin, Cüneyt
Stanley, Max
Santhosh, Sandra
Islam, Saurav
Richardella, Anthony
Mkhoyan, K. Andre
Flatté, Michael E.
Samarth, Nitin
author_facet Ou, Yongxi
Yanez-Parreño, Wilson
Huang, Yu-sheng
Ghosh, Supriya
Şahin, Cüneyt
Stanley, Max
Santhosh, Sandra
Islam, Saurav
Richardella, Anthony
Mkhoyan, K. Andre
Flatté, Michael E.
Samarth, Nitin
contents Bulk-boundary correspondence is a foundational principle underlying the electronic band structure and physical behavior of topological quantum materials. Although it has been rigorously tested in topological systems where the physical properties involve charge currents, it remains unclear whether bulk-boundary correspondence should also hold for non-conserved spin currents. We study charge-to-spin conversion in a canonical topological insulator, Bi$_{1-x}$Sb$_x$, to address this fundamentally unresolved question. We use spin-torque ferromagnetic resonance measurements to accurately probe the charge-to-spin conversion efficiency in epitaxial Bi$_{1-x}$Sb$_x$~thin films of high structural quality spanning the entire range of composition, including both trivial and topological band structures, as verified using {\it in vacuo} angle-resolved photoemission spectroscopy. From these measurements, we deduce the effective spin Hall conductivity (SHC) and find excellent agreement with the values predicted by tight-binding calculations for the intrinsic SHC of the bulk bands. These results provide strong evidence that the strong spin-orbit entanglement of bulk states well below the Fermi energy connects directly to the SHC in epitaxial Bi$_{1-x}$Sb$_x$~films interfaced with a metallic ferromagnet. The excellent agreement between theory and experiment points to the generic value of analyses focused entirely on bulk properties, even for topological systems involving non-conserved spin currents.
format Preprint
id arxiv_https___arxiv_org_abs_2311_11933
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Spin Hall conductivity in Bi$_{1-x}$Sb$_x$ as an experimental test of bulk-boundary correspondence
Ou, Yongxi
Yanez-Parreño, Wilson
Huang, Yu-sheng
Ghosh, Supriya
Şahin, Cüneyt
Stanley, Max
Santhosh, Sandra
Islam, Saurav
Richardella, Anthony
Mkhoyan, K. Andre
Flatté, Michael E.
Samarth, Nitin
Mesoscale and Nanoscale Physics
Bulk-boundary correspondence is a foundational principle underlying the electronic band structure and physical behavior of topological quantum materials. Although it has been rigorously tested in topological systems where the physical properties involve charge currents, it remains unclear whether bulk-boundary correspondence should also hold for non-conserved spin currents. We study charge-to-spin conversion in a canonical topological insulator, Bi$_{1-x}$Sb$_x$, to address this fundamentally unresolved question. We use spin-torque ferromagnetic resonance measurements to accurately probe the charge-to-spin conversion efficiency in epitaxial Bi$_{1-x}$Sb$_x$~thin films of high structural quality spanning the entire range of composition, including both trivial and topological band structures, as verified using {\it in vacuo} angle-resolved photoemission spectroscopy. From these measurements, we deduce the effective spin Hall conductivity (SHC) and find excellent agreement with the values predicted by tight-binding calculations for the intrinsic SHC of the bulk bands. These results provide strong evidence that the strong spin-orbit entanglement of bulk states well below the Fermi energy connects directly to the SHC in epitaxial Bi$_{1-x}$Sb$_x$~films interfaced with a metallic ferromagnet. The excellent agreement between theory and experiment points to the generic value of analyses focused entirely on bulk properties, even for topological systems involving non-conserved spin currents.
title Spin Hall conductivity in Bi$_{1-x}$Sb$_x$ as an experimental test of bulk-boundary correspondence
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2311.11933