Spin-Orbit Torques and Anisotropic Magnetization Damping in Skyrmion Crystals
Kjetil M. D. Hals, Arne Brataas

TL;DR
This paper theoretically investigates how spin-orbit torques and anisotropic damping influence skyrmion dynamics in chiral magnets, revealing significant relativistic effects on skyrmion velocity and motion.
Contribution
It introduces a comprehensive theoretical analysis of reactive and dissipative spin-orbit torques and anisotropic damping effects on skyrmion motion, highlighting relativistic corrections.
Findings
Spin-orbit torques significantly affect skyrmion velocity.
Dissipative torque generates a relativistic Magnus force.
Reactive torque modifies drift and transverse velocities.
Abstract
The length scale of the magnetization gradients in chiral magnets is determined by the relativistic Dzyaloshinskii-Moriya interaction. Thus, even conventional spin-transfer torques are controlled by the relativistic spin-orbit coupling in these systems, and additional relativistic corrections to the current-induced torques and magnetization damping become important for a complete understanding of the current-driven magnetization dynamics. We theoretically study the effects of reactive and dissipative homogeneous spin-orbit torques and anisotropic damping on the current-driven skyrmion dynamics in cubic chiral magnets. Our results demonstrate that spin-orbit torques play a significant role in the current-induced skyrmion velocity. The dissipative spin-orbit torque generates a relativistic Magnus force on the skyrmions, whereas the reactive spin-orbit torque yields a correction to both…
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Taxonomy
TopicsMagnetic properties of thin films · Physics of Superconductivity and Magnetism · Magnetic confinement fusion research
