Magnetic Bimeron Traveling on the Domain Wall

Fuente: arXiv
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Main Authors: Chen, Jiwen, Shen, Laichuan, An, Hongyu, Zhang, Xichao, Zhang, Hua, Du, Haifeng, Li, Xiaoguang, Zhou, Yan
Format: Preprint
Published: 2024
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author Chen, Jiwen
Shen, Laichuan
An, Hongyu
Zhang, Xichao
Zhang, Hua
Du, Haifeng
Li, Xiaoguang
Zhou, Yan
author_facet Chen, Jiwen
Shen, Laichuan
An, Hongyu
Zhang, Xichao
Zhang, Hua
Du, Haifeng
Li, Xiaoguang
Zhou, Yan
contents Domain wall bimerons (DWBMs) are nanoscale spin textures residing within the magnetic domain walls of in-plane magnets. In this study, we employ both numerical and analytical methods to explore the stabilization of Néel-type domain wall bimerons and their dynamics when excited by spin-orbit torque. Our findings reveal two unique and intriguing dynamic mechanisms, which depend on the polarization direction of the spin current: In the first scenario, the magnetic domain wall serves as a track that confines the motion of the bimeron and effectively suppresses the skyrmion Hall effect. In the second scenario, pushing the magnetic domain wall triggers a rapid sliding of the bimeron along the wall. This process significantly enhances the dynamics of the bimeron, resulting in a velocity increase of approximately 40 times compared to skyrmions and bimeron solitons. Our results highlight the potential advantages of the skyrmion Hall effect in developing energy-efficient spintronic devices based on domain wall bimerons.
format Preprint
id arxiv_https___arxiv_org_abs_2404_15810
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Magnetic Bimeron Traveling on the Domain Wall
Chen, Jiwen
Shen, Laichuan
An, Hongyu
Zhang, Xichao
Zhang, Hua
Du, Haifeng
Li, Xiaoguang
Zhou, Yan
Mesoscale and Nanoscale Physics
Domain wall bimerons (DWBMs) are nanoscale spin textures residing within the magnetic domain walls of in-plane magnets. In this study, we employ both numerical and analytical methods to explore the stabilization of Néel-type domain wall bimerons and their dynamics when excited by spin-orbit torque. Our findings reveal two unique and intriguing dynamic mechanisms, which depend on the polarization direction of the spin current: In the first scenario, the magnetic domain wall serves as a track that confines the motion of the bimeron and effectively suppresses the skyrmion Hall effect. In the second scenario, pushing the magnetic domain wall triggers a rapid sliding of the bimeron along the wall. This process significantly enhances the dynamics of the bimeron, resulting in a velocity increase of approximately 40 times compared to skyrmions and bimeron solitons. Our results highlight the potential advantages of the skyrmion Hall effect in developing energy-efficient spintronic devices based on domain wall bimerons.
title Magnetic Bimeron Traveling on the Domain Wall
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2404.15810