A theory of skyrmion crystal formation
arXiv:2101.10104 · doi:10.1039/D2NR01300B
Abstract
A generic theory about skyrmion crystal (SkX) formation in chiral magnetic thin films and its fascinating thermodynamic behaviours is presented. A chiral magnetic film can have many metastable states with an arbitrary skyrmion density up to a maximal value when a parameter , which measures the relative Dzyaloshinskii-Moriya interaction (DMI) strength, is large enough. The lowest energy state of an infinite film is a long zig-zagged ramified stripe skyrmion occupied the whole film in the absence of a magnetic field. Under an intermediate field perpendicular to the film, the lowest energy state has a finite skyrmion density. This is why a chiral magnetic film is often in a stripy state at a low field and a SkX only around an optimal field when is above a critical value. The lowest energy state is still a stripy helical state no matter with or without a field when is below the critical value. The multi-metastable states explains the thermodynamic path dependences of various metastable states of a film. Decrease of value with the temperature explains why SkXs become metastable at low temperature in many skyrmion systems. These findings open a new avenue for SkX manipulation and skyrmion-based applications.
15 pages, 12 figures
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Cited by in corpus (5)
- Transformations from stripy states to skyrmion crystals
- Particle-continuum-medium duality of skyrmions
- Unconventional Surface State Pairs in a High-Symmetry Lattice with Anti-ferromagnetic Band-folding
- Skyrmion Generation through the Chirality Interplay of Light and Magnetism
- Symmetry-Governed Dynamics of Magnetic Skyrmions Under Field Pulses