Orbital Hall conductivity and orbital diffusion length of Vanadium thin films by Hanle magnetoresistance

Fuente: arXiv
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Main Authors: Aguilar-Pujol, M. Xochitl, Arango, Isabel C., Dolan, Eoin, Ba, You, Gobbi, Marco, Hueso, Luis E., Casanova, Fèlix
Format: Preprint
Published: 2025
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author Aguilar-Pujol, M. Xochitl
Arango, Isabel C.
Dolan, Eoin
Ba, You
Gobbi, Marco
Hueso, Luis E.
Casanova, Fèlix
author_facet Aguilar-Pujol, M. Xochitl
Arango, Isabel C.
Dolan, Eoin
Ba, You
Gobbi, Marco
Hueso, Luis E.
Casanova, Fèlix
contents In spintronics, the spin Hall effect has been widely used to generate and detect spin currents in materials with strong spin-orbit coupling such as Pt and Ta. Recently, its orbital counterpart has drawn attention as a new tool to generate and detect orbital currents and thus investigate orbital transport parameters. In this study, we investigate vanadium (V), a $3d$ transition metal with weak spin-orbit coupling but with a theoretically large orbital Hall conductivity. We measure a large Hanle magnetoresistance in V thin films with a magnitude comparable to that of heavy metals and at least one order of magnitude higher than the spin Hall magnetoresistance observed in a Y$_3$Fe$_5$O$_{12}$/V bilayer, pointing to the orbital Hall origin of the effect. A fit of the magnetic-field dependence and thickness dependence of the Hanle magnetoresistance to the standard diffusion model allows us to quantify the orbital diffusion length (~2 nm) and the orbital Hall conductivity (~78 ($\hbar/2e$) $Ω^{-1}$cm$^{-1}$) of V. The obtained orbital Hall conductivity is two orders of magnitude smaller than theoretical calculations of the intrinsic value, suggesting there is an important role of disorder.
format Preprint
id arxiv_https___arxiv_org_abs_2506_06546
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Orbital Hall conductivity and orbital diffusion length of Vanadium thin films by Hanle magnetoresistance
Aguilar-Pujol, M. Xochitl
Arango, Isabel C.
Dolan, Eoin
Ba, You
Gobbi, Marco
Hueso, Luis E.
Casanova, Fèlix
Mesoscale and Nanoscale Physics
In spintronics, the spin Hall effect has been widely used to generate and detect spin currents in materials with strong spin-orbit coupling such as Pt and Ta. Recently, its orbital counterpart has drawn attention as a new tool to generate and detect orbital currents and thus investigate orbital transport parameters. In this study, we investigate vanadium (V), a $3d$ transition metal with weak spin-orbit coupling but with a theoretically large orbital Hall conductivity. We measure a large Hanle magnetoresistance in V thin films with a magnitude comparable to that of heavy metals and at least one order of magnitude higher than the spin Hall magnetoresistance observed in a Y$_3$Fe$_5$O$_{12}$/V bilayer, pointing to the orbital Hall origin of the effect. A fit of the magnetic-field dependence and thickness dependence of the Hanle magnetoresistance to the standard diffusion model allows us to quantify the orbital diffusion length (~2 nm) and the orbital Hall conductivity (~78 ($\hbar/2e$) $Ω^{-1}$cm$^{-1}$) of V. The obtained orbital Hall conductivity is two orders of magnitude smaller than theoretical calculations of the intrinsic value, suggesting there is an important role of disorder.
title Orbital Hall conductivity and orbital diffusion length of Vanadium thin films by Hanle magnetoresistance
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.06546