Magnetization reversal mechanism of double-helix nanowires probed by dark-field magneto-optical Kerr effect
Takeaki Gokita, Jakub Jurczyk, Na\"emi Leo, Sabri Koraltan, Alberto Anad\'on, Miguel \'Angel Cascales-Sandoval, Rachid Belkhou, Claas Abert, Dieter Suess, Claire Donnelly, Amalio Fern\'andez-Pacheco

TL;DR
This study investigates the magnetization reversal mechanism of double-helix nanowires using dark-field magneto-optical Kerr effect magnetometry, revealing a reversal process mediated by a helical vortex tube through combined experimental and simulation approaches.
Contribution
It introduces a lab-based method to analyze 3D nanostructure reversal mechanisms, expanding beyond large-scale facility limitations and providing detailed microscopic insights.
Findings
Reversal involves nucleation of a helical vortex tube in a curling manner.
DF-MOKE effectively probes reversal mechanisms in single 3D nanostructures.
Micromagnetic simulations support a nucleation-propagation process of the vortex tube.
Abstract
Double-helix (DH) nanowires provide a platform to study the influence of geometric chirality on spin chirality. Their three-dimensional (3D) helical architecture and tunable inter-strand coupling enable control of spin chirality, including the stabilization of topological 3D magnetic states such as helical domains and domain walls, topological stray fields, and extended helical vortex/skyrmion tubes. So far, the study of these and other 3D nanostructures is usually confined to a limited number of magnetic microscopy experiments in large facilities. Here, we investigate the reversal mechanism of a single DH nanowire using Dark-Field magneto-optical Kerr effect (DF-MOKE) magnetometry under external 3D magnetic fields. By analyzing the angular dependence of the DF-MOKE signal, we fit the reversal process using established models for domain-wall nucleation and propagation, finding a…
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Taxonomy
TopicsMagnetic properties of thin films · Multiferroics and related materials · Chemical and Physical Properties of Materials
