Dynamic domain wall chirality rectification by rotating magnetic fields
Author(s) -
A. Bisig,
MohamadAssaad Mawass,
Martin Stärk,
Christoforos Moutafis,
J. Rhensius,
J. Heidler,
Sebastian Gliga,
Markus Weigand,
Tolek Tyliszczak,
Bartel Van Waeyenberge,
Hermann Stoll,
Gisela Schütz,
Mathias Kläui
Publication year - 2015
Publication title -
applied physics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.182
H-Index - 442
eISSN - 1077-3118
pISSN - 0003-6951
DOI - 10.1063/1.4915256
Subject(s) - chirality (physics) , magnetic domain , micromagnetics , ferromagnetism , domain wall (magnetism) , vortex , magnetic field , rectification , ring (chemistry) , rotation (mathematics) , physics , materials science , condensed matter physics , chemistry , magnetization , geometry , mechanics , power (physics) , mathematics , quantum mechanics , nambu–jona lasinio model , quark , chiral symmetry breaking , organic chemistry
We report on the observation of magnetic vortex domain wall chirality reversal in ferromagnetic rings that is controlled by the sense of rotation of a magnetic field. We use time-resolved X-ray microscopy to dynamically image the chirality-switching process and perform micromagnetic simulations to deduce the switching details from time-resolved snapshots. We find experimentally that the switching occurs within less than 4 ns and is observed in all samples with ring widths ranging from 0.5 μm to 2 μm, ring diameters between 2 μm and 5 μm, and a thickness of 30 nm, where a vortex domain wall is present in the magnetic onion state of the ring. From the magnetic contrast in the time-resolved images, we can identify effects of thermal activation, which plays a role for the switching process. Moreover, we find that the process is highly reproducible so that the domain wall chirality can be set with high fidelity.
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