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Updated: May 17, 2025

Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
Published on: July 20, 2022
Topological transitions, pinning and ratchets for driven magnetic hopfions in nanostructures
J C Bellizotti Souza1, C J O Reichhardt2, C Reichhardt2
1POSMAT-Programa de Pós-Graduação em Ciência e Tecnologia de Materiais, School of Sciences, São Paulo State University (UNESP), Bauru, São Paulo, 17033-360, Brazil. jc.souza@unesp.br.
Abstract:
Using atomistic simulations, we examine the dynamics of three-dimensional magnetic hopfions interacting with an array of line defects or posts as a function of defect spacing, defect strength, and current. We find a pinned phase, a sliding phase where a hopfion can move through the posts or hurdles by distorting, and a regime where the hopfion becomes compressed and transforms into a toron that is half the size of the hopfion and moves at a lower velocity. The toron states occur when the defects are strong; however, in the toron regime, it is possible to stabilize sliding hopfions by increasing the applied current. Hopfions move without a Hall angle, while the toron moves with a finite Hall angle. We also show that when a hopfion interacts with an asymmetric array of planar defects, a ratchet effect consisting of a net dc motion can be realized under purely ac driving.
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