Unified Theory of Magnetoelastic Effects in B20 chiral magnets
arXiv:1604.02766 · doi:10.1088/1367-2630/aa9507
Abstract
A magnetic skyrmion is a spin whirl with topological protection and high mobility to electric current. Intrinsic magnetoelastic coupling in chiral magnets permits manipulation of magnetic skyrmions and their lattice using mechanical loads, which is essential for developing future spintronics devices. It is found in experiments that the stability and deformation of skyrmions are sensitive to stresses, while the appearance of magnetic skyrmions in turn has a significant effect on the mechanical properties of the underlying material. However, a theory which explains these related phenomena within a unified framework is not seen. Here we construct a thermodynamic model for B20 helimagnets incorporating a magnetoelastic functional with necessary higher order interactions derived by group theory. Within the model, we establish the methodology to calculate the phase diagram and equilibrium properties of helimagnets under coupled temperature-magneto-elastic field. Applying the model to bulk MnSi, we calculate the temperature-magnetic field phase diagram under stress-free condition and its variation when uniaxial compression is applied. We also calculate the variation of all the elastic constants with magnetic field. The results obtained agree quantitatively with corresponding experiments. Our model provides a reliable basis for further theoretical studies concerning any magnetoelastic related phenomena in chiral magnets.
16 pages, 4 figures
References in corpus (8)
- Spontaneous Skyrmion Ground States in Magnetic Metals
- Theory of current-driven motion of Skyrmions and spirals in helical magnets
- Thermally Driven Ratchet Motion of Skyrmion Microcrystal and Topological Magnon Hall Effect
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- Reversible "triple-Q" elastic field structures in a chiral magnet
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Cited by in corpus (8)
- Atomic scale visualization of topological spin textures in the chiral magnet MnGe
- Theory of magnetoelastic resonance in a mono-axial chiral helimagnet
- Tensile deformations of the magnetic chiral soliton lattice probed by Lorentz transmission electron microscopy
- Nonlinear emergent elasticity and structural transitions of skyrmion crystal under uniaxial distortion
- Wave-nature and metastability of emergent crystals in chiral magnets
- Pressure induced isostructural phase transition in biskyrmion host hexagonal MnNiGa
- Reversible "triple-Q" elastic field structures in a chiral magnet
- Topological transition and emergent elasticity of dislocation in skyrmion lattice: Beyond Kittel's magnetic-polar analogy