Publication | Open Access
Enhanced Nonadiabaticity in Vortex Cores due to the Emergent Hall Effect
34
Citations
43
References
2016
Year
EngineeringMagnetic Vortex CoresFluid MechanicsSpin TexturesMagnetic ResonanceMagnetic TexturesSpin DynamicMagnetic MaterialsSpin PhenomenonMagnetismVortex CoresMicromagneticsVortex DynamicPhysicsLow-dimensional SystemsEnhanced NonadiabaticityQuantum MagnetismSpintronicsVortex DynamicsMagnetic Damping αNatural SciencesApplied PhysicsCondensed Matter PhysicsVortex Induced VibrationMagnetic PropertySkyrmionsEmergent Hall Effect
We present a combined theoretical and experimental study, investigating the origin of the enhanced nonadiabaticity of magnetic vortex cores. Scanning transmission x-ray microscopy is used to image the vortex core gyration dynamically to measure the nonadiabaticity with high precision, including a high confidence upper bound. We show theoretically, that the large nonadiabaticity parameter observed experimentally can be explained by the presence of local spin currents arising from a texture induced emergent Hall effect. This study demonstrates that the magnetic damping α and nonadiabaticity parameter β are very sensitive to the topology of the magnetic textures, resulting in an enhanced ratio (β/α>1) in magnetic vortex cores or Skyrmions.
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