Itinerant Orbital Hall Effect Mechanism Leading to Large Negative Orbital Torques from Light Metal Vanadium

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Hauptverfasser: Vijayan, Nikhil, Kumar, Durgesh, Du, Ao, Sastges, Mirco, Gao, Lei, Xiao, Zijie, Go, Dongwook, Ledesma-Martin, José Omar, Wang, Hai I., Jo, Daegeun, Oppeneer, Peter M., Gupta, Rahul, Jakob, Gerhard, Krishnia, Sachin, Mokrousov, Yuriy, Kläui, Mathias
Format: Preprint
Veröffentlicht: 2025
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author Vijayan, Nikhil
Kumar, Durgesh
Du, Ao
Sastges, Mirco
Gao, Lei
Xiao, Zijie
Go, Dongwook
Ledesma-Martin, José Omar
Wang, Hai I.
Jo, Daegeun
Oppeneer, Peter M.
Gupta, Rahul
Jakob, Gerhard
Krishnia, Sachin
Mokrousov, Yuriy
Kläui, Mathias
author_facet Vijayan, Nikhil
Kumar, Durgesh
Du, Ao
Sastges, Mirco
Gao, Lei
Xiao, Zijie
Go, Dongwook
Ledesma-Martin, José Omar
Wang, Hai I.
Jo, Daegeun
Oppeneer, Peter M.
Gupta, Rahul
Jakob, Gerhard
Krishnia, Sachin
Mokrousov, Yuriy
Kläui, Mathias
contents The orbital Hall effect (OHE) has attracted significant attention for developing energy-efficient electronic devices. However, utilizing it in fast, low-power devices requires an enhanced understanding of underlying extrinsic and intrinsic contributions to OHE at timescales ranging from quasi-static to picoseconds. Here, we investigate OHE in light metal vanadium (V) using a combination of selected measurement schemes, spanning the full frequency range. We observe a negative damping-like torque efficiency from V, opposite to conventional theoretical predictions, with a magnitude that depends on the adjacent ferromagnet, a dependence that indicates orbital effects. These results, with consistent torque efficiencies across all frequencies, corroborate a negative and intrinsic OHE in V with a large effective orbital Hall conductivity of $-(1.44 \pm 0.34)\,\frac{\hbar}{2e}\,\times 10^{5}\,Ω^{-1}\,\mathrm{m}^{-1}$ and a long orbital diffusion length of $(15.0 \pm 2.5)\,\mathrm{nm}$. To explain the observed OHE, we develop a theoretical model incorporating both local and itinerant circulation contributions to OHE. The model agrees excellently with the experimental results, demonstrating that itinerant contributions are essential for a complete physical understanding of intrinsic OHE. Our consistent experimental and theoretical data highlight the importance of itinerant contributions governing the fundamental understanding of intrinsic OHE and the large effects found open pathways for energy-efficient orbitronic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2508_16339
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Itinerant Orbital Hall Effect Mechanism Leading to Large Negative Orbital Torques from Light Metal Vanadium
Vijayan, Nikhil
Kumar, Durgesh
Du, Ao
Sastges, Mirco
Gao, Lei
Xiao, Zijie
Go, Dongwook
Ledesma-Martin, José Omar
Wang, Hai I.
Jo, Daegeun
Oppeneer, Peter M.
Gupta, Rahul
Jakob, Gerhard
Krishnia, Sachin
Mokrousov, Yuriy
Kläui, Mathias
Mesoscale and Nanoscale Physics
Materials Science
The orbital Hall effect (OHE) has attracted significant attention for developing energy-efficient electronic devices. However, utilizing it in fast, low-power devices requires an enhanced understanding of underlying extrinsic and intrinsic contributions to OHE at timescales ranging from quasi-static to picoseconds. Here, we investigate OHE in light metal vanadium (V) using a combination of selected measurement schemes, spanning the full frequency range. We observe a negative damping-like torque efficiency from V, opposite to conventional theoretical predictions, with a magnitude that depends on the adjacent ferromagnet, a dependence that indicates orbital effects. These results, with consistent torque efficiencies across all frequencies, corroborate a negative and intrinsic OHE in V with a large effective orbital Hall conductivity of $-(1.44 \pm 0.34)\,\frac{\hbar}{2e}\,\times 10^{5}\,Ω^{-1}\,\mathrm{m}^{-1}$ and a long orbital diffusion length of $(15.0 \pm 2.5)\,\mathrm{nm}$. To explain the observed OHE, we develop a theoretical model incorporating both local and itinerant circulation contributions to OHE. The model agrees excellently with the experimental results, demonstrating that itinerant contributions are essential for a complete physical understanding of intrinsic OHE. Our consistent experimental and theoretical data highlight the importance of itinerant contributions governing the fundamental understanding of intrinsic OHE and the large effects found open pathways for energy-efficient orbitronic devices.
title Itinerant Orbital Hall Effect Mechanism Leading to Large Negative Orbital Torques from Light Metal Vanadium
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2508.16339