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Autores principales: Jeong, Suyeong, Jung, Dae-Han, Han, Hee-Sung, Kim, Ganghwi, Kang, Myeonghwan, Im, Mi-Young, Park, Younggun, Lee, Ki-Suk
Formato: Preprint
Publicado: 2024
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Acceso en línea:https://arxiv.org/abs/2411.04367
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author Jeong, Suyeong
Jung, Dae-Han
Han, Hee-Sung
Kim, Ganghwi
Kang, Myeonghwan
Im, Mi-Young
Park, Younggun
Lee, Ki-Suk
author_facet Jeong, Suyeong
Jung, Dae-Han
Han, Hee-Sung
Kim, Ganghwi
Kang, Myeonghwan
Im, Mi-Young
Park, Younggun
Lee, Ki-Suk
contents Skyrmions, topologically stable magnetic solitons characterized by whirling magnetization in nanoscale magnetic elements, show promise information carriers in spintronics and spin-based quantum computing due to their unique properties: small size, stability, and controllability. In this study, we introduce a novel method of skyrmion generation through domain wall deformation dynamics. Our analytical and micromagnetic simulations demonstrate that domain wall motion exceeding the Walker threshold induces topological deformation of magnetic domain walls exhibiting Dzyaloshinskii-Moriya interaction. This deformation process catalyzes the emergence of skyrmions from magnetic domain wall structure distortion, specifically through the Anchoring of domain walls due to the vertical Bloch line. We elucidate the underlying mechanism of skyrmion generation, correlating it with topological transitions accompanied by burst energy dissipation through spin-wave radiation. Notably, we present robust skyrmion generation conditions through a comprehensive classification of domain wall distortion, including vertical Bloch line generation and annihilation in magnetic domain wall dynamics within a DMI system. These findings provide noble insights into topological behaviors of spin structures and offer a potential pathway for efficient, controlled skyrmion creation in the next-generation spintronic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2411_04367
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Skyrmion Emergence via Domain Wall Anchoring through Vertical Bloch Line
Jeong, Suyeong
Jung, Dae-Han
Han, Hee-Sung
Kim, Ganghwi
Kang, Myeonghwan
Im, Mi-Young
Park, Younggun
Lee, Ki-Suk
Mesoscale and Nanoscale Physics
Skyrmions, topologically stable magnetic solitons characterized by whirling magnetization in nanoscale magnetic elements, show promise information carriers in spintronics and spin-based quantum computing due to their unique properties: small size, stability, and controllability. In this study, we introduce a novel method of skyrmion generation through domain wall deformation dynamics. Our analytical and micromagnetic simulations demonstrate that domain wall motion exceeding the Walker threshold induces topological deformation of magnetic domain walls exhibiting Dzyaloshinskii-Moriya interaction. This deformation process catalyzes the emergence of skyrmions from magnetic domain wall structure distortion, specifically through the Anchoring of domain walls due to the vertical Bloch line. We elucidate the underlying mechanism of skyrmion generation, correlating it with topological transitions accompanied by burst energy dissipation through spin-wave radiation. Notably, we present robust skyrmion generation conditions through a comprehensive classification of domain wall distortion, including vertical Bloch line generation and annihilation in magnetic domain wall dynamics within a DMI system. These findings provide noble insights into topological behaviors of spin structures and offer a potential pathway for efficient, controlled skyrmion creation in the next-generation spintronic devices.
title Skyrmion Emergence via Domain Wall Anchoring through Vertical Bloch Line
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2411.04367