Orbital torque in magnetic bilayers

The orbital Hall effect involves the transport of orbital angular momentum perpendicular to an applied charge current, analogous to the spin Hall effect. Here, Lee et al examine magnetic torques present in a Nickel/Tantalum bilayer, clearly demonstrating the contribution of the orbital Hall effect.

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Autores principales: Dongjoon Lee, Dongwook Go, Hyeon-Jong Park, Wonmin Jeong, Hye-Won Ko, Deokhyun Yun, Daegeun Jo, Soogil Lee, Gyungchoon Go, Jung Hyun Oh, Kab-Jin Kim, Byong-Guk Park, Byoung-Chul Min, Hyun Cheol Koo, Hyun-Woo Lee, OukJae Lee, Kyung-Jin Lee
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2021
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Acceso en línea:https://doaj.org/article/1f76056942594c3d9885c698e4d54421
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spelling oai:doaj.org-article:1f76056942594c3d9885c698e4d544212021-11-21T12:34:29ZOrbital torque in magnetic bilayers10.1038/s41467-021-26650-92041-1723https://doaj.org/article/1f76056942594c3d9885c698e4d544212021-11-01T00:00:00Zhttps://doi.org/10.1038/s41467-021-26650-9https://doaj.org/toc/2041-1723The orbital Hall effect involves the transport of orbital angular momentum perpendicular to an applied charge current, analogous to the spin Hall effect. Here, Lee et al examine magnetic torques present in a Nickel/Tantalum bilayer, clearly demonstrating the contribution of the orbital Hall effect.Dongjoon LeeDongwook GoHyeon-Jong ParkWonmin JeongHye-Won KoDeokhyun YunDaegeun JoSoogil LeeGyungchoon GoJung Hyun OhKab-Jin KimByong-Guk ParkByoung-Chul MinHyun Cheol KooHyun-Woo LeeOukJae LeeKyung-Jin LeeNature PortfolioarticleScienceQENNature Communications, Vol 12, Iss 1, Pp 1-8 (2021)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Dongjoon Lee
Dongwook Go
Hyeon-Jong Park
Wonmin Jeong
Hye-Won Ko
Deokhyun Yun
Daegeun Jo
Soogil Lee
Gyungchoon Go
Jung Hyun Oh
Kab-Jin Kim
Byong-Guk Park
Byoung-Chul Min
Hyun Cheol Koo
Hyun-Woo Lee
OukJae Lee
Kyung-Jin Lee
Orbital torque in magnetic bilayers
description The orbital Hall effect involves the transport of orbital angular momentum perpendicular to an applied charge current, analogous to the spin Hall effect. Here, Lee et al examine magnetic torques present in a Nickel/Tantalum bilayer, clearly demonstrating the contribution of the orbital Hall effect.
format article
author Dongjoon Lee
Dongwook Go
Hyeon-Jong Park
Wonmin Jeong
Hye-Won Ko
Deokhyun Yun
Daegeun Jo
Soogil Lee
Gyungchoon Go
Jung Hyun Oh
Kab-Jin Kim
Byong-Guk Park
Byoung-Chul Min
Hyun Cheol Koo
Hyun-Woo Lee
OukJae Lee
Kyung-Jin Lee
author_facet Dongjoon Lee
Dongwook Go
Hyeon-Jong Park
Wonmin Jeong
Hye-Won Ko
Deokhyun Yun
Daegeun Jo
Soogil Lee
Gyungchoon Go
Jung Hyun Oh
Kab-Jin Kim
Byong-Guk Park
Byoung-Chul Min
Hyun Cheol Koo
Hyun-Woo Lee
OukJae Lee
Kyung-Jin Lee
author_sort Dongjoon Lee
title Orbital torque in magnetic bilayers
title_short Orbital torque in magnetic bilayers
title_full Orbital torque in magnetic bilayers
title_fullStr Orbital torque in magnetic bilayers
title_full_unstemmed Orbital torque in magnetic bilayers
title_sort orbital torque in magnetic bilayers
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/1f76056942594c3d9885c698e4d54421
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AT deokhyunyun orbitaltorqueinmagneticbilayers
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