Diffusionless relaxation of half-skyrmion liquid, hexatic, and crystalline states in a chiral molecular crystal
Kyohei Takae, Kota Mitsumoto

TL;DR
This study reveals that in condensed phases of half-skyrmions, structural relaxation is primarily driven by fusion and fission events rather than diffusion, which is suppressed by cages but enhanced by fluctuations, affecting sound wave interactions.
Contribution
It uncovers the dominant role of fusion-fission dynamics over diffusion in the structural relaxation of half-skyrmion phases and links these dynamics to sound wave coupling.
Findings
Fusion and fission drive primary structural relaxation.
Diffusion is suppressed by cages and enhanced by fluctuations.
Half-skyrmion motion couples differently with transverse and longitudinal sound waves.
Abstract
Particles in a crowded environment exhibit slow anomalous diffusion, and their efficient manipulation is important in controlling transport phenomena in complex materials. Skyrmions and half-skyrmions, spatially localized quasiparticles observed in magnetic systems and liquid crystals, also exhibit diffusive motion. They exhibit normal diffusion in dilute conditions. However, the cooperative dynamics and diffusion of skyrmions and half-skyrmions in their condensed liquid, hexatic, and crystalline phases are elusive. Here we show in the half-skyrmion condensed phases that the fusion and fission of half-skyrmions, not their diffusion, are responsible for the primary structural relaxation. The fusion and fission occur due to the non-conserved nature of the quasiparticle number density. The diffusion, which contributes to the secondary structural relaxation, is suppressed by cages formed by…
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Taxonomy
TopicsMaterial Dynamics and Properties · Granular flow and fluidized beds · NMR spectroscopy and applications
