Coexistence of unconventional spin Hall effect and antisymmetric planar Hall effect in IrO$_2$

Fuente: arXiv
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Main Authors: Yang, Yifei, Nair, Sreejith, Fan, Yihong, Chen, Yu-Chia, Jia, Qi, Benally, Onri Jay, Lee, Seungjun, Jeong, Seung Gyo, Yang, Zhifei, Low, Tony, Jalan, Bharat, Wang, Jian-Ping
Format: Preprint
Published: 2024
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author Yang, Yifei
Nair, Sreejith
Fan, Yihong
Chen, Yu-Chia
Jia, Qi
Benally, Onri Jay
Lee, Seungjun
Jeong, Seung Gyo
Yang, Zhifei
Low, Tony
Jalan, Bharat
Wang, Jian-Ping
author_facet Yang, Yifei
Nair, Sreejith
Fan, Yihong
Chen, Yu-Chia
Jia, Qi
Benally, Onri Jay
Lee, Seungjun
Jeong, Seung Gyo
Yang, Zhifei
Low, Tony
Jalan, Bharat
Wang, Jian-Ping
contents Crystal symmetry plays an important role in the Hall effects. Unconventional spin Hall effect (USHE), characterized by Dresselhaus and out-of-plane spins, has been observed in materials with low crystal symmetry. Recently, antisymmetric planar Hall effect (APHE) was discovered in rutile RuO2 and IrO2 (101) thin films, which also exhibit low crystal symmetry. In this study, we report the observation of both USHE and APHE in IrO2 (111) films, using spin-torque ferromagnetic resonance (ST-FMR) and harmonic Hall measurements, respectively. Notably, the unconventional spin torque efficiency from Dresselhaus spin was more than double that of a previous report. Additionally, the temperature dependence of APHE suggests that it arises from the Lorentz force, constrained by crystal symmetry. Symmetry analysis supports the coexistence of USHE and APHE and demonstrates that both originate from the crystal symmetry of IrO2 (111), paving the way for a deeper understanding of Hall effects and related physical phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2411_05688
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Coexistence of unconventional spin Hall effect and antisymmetric planar Hall effect in IrO$_2$
Yang, Yifei
Nair, Sreejith
Fan, Yihong
Chen, Yu-Chia
Jia, Qi
Benally, Onri Jay
Lee, Seungjun
Jeong, Seung Gyo
Yang, Zhifei
Low, Tony
Jalan, Bharat
Wang, Jian-Ping
Mesoscale and Nanoscale Physics
Crystal symmetry plays an important role in the Hall effects. Unconventional spin Hall effect (USHE), characterized by Dresselhaus and out-of-plane spins, has been observed in materials with low crystal symmetry. Recently, antisymmetric planar Hall effect (APHE) was discovered in rutile RuO2 and IrO2 (101) thin films, which also exhibit low crystal symmetry. In this study, we report the observation of both USHE and APHE in IrO2 (111) films, using spin-torque ferromagnetic resonance (ST-FMR) and harmonic Hall measurements, respectively. Notably, the unconventional spin torque efficiency from Dresselhaus spin was more than double that of a previous report. Additionally, the temperature dependence of APHE suggests that it arises from the Lorentz force, constrained by crystal symmetry. Symmetry analysis supports the coexistence of USHE and APHE and demonstrates that both originate from the crystal symmetry of IrO2 (111), paving the way for a deeper understanding of Hall effects and related physical phenomena.
title Coexistence of unconventional spin Hall effect and antisymmetric planar Hall effect in IrO$_2$
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2411.05688