Symmetry breaking, slow relaxation dynamics, and topological defects at the field-induced helix reorientation in MnSi
A. Bauer, A. Chacon, M. Wagner, M. Halder. R. Georgii, A. Rosch, C., Pfleiderer, M. Garst

TL;DR
This study investigates the reorientation of helimagnetic order in MnSi under magnetic fields, revealing symmetry-breaking, slow dynamics, and topological defects, with implications for spintronics.
Contribution
It provides a comprehensive experimental and theoretical analysis of helix reorientation, including phase transition types and defect formation in MnSi.
Findings
Reorientation transitions depend on field direction and history.
Large relaxation times indicate slow domain dynamics.
Topological defects like disclinations are observed.
Abstract
We report a study of the reorientation of the helimagnetic order in the archetypal cubic chiral magnet MnSi as a function of magnetic field direction. The reorientation process as inferred from small-angle neutron scattering, the magnetization, and the ac susceptibility is in excellent agreement with an effective mean-field theory taking into account the precise symmetries of the crystallographic space group. Depending on the field and temperature history and the direction of the field with respect to the crystalline axes, the helix reorientation may exhibit a crossover, a first-order, or a second-order transition. The magnetization and ac susceptibility provide evidence that the reorientation of helimagnetic domains is associated with large relaxation times exceeding seconds. At the second-order transitions residual Ising symmetries are spontaneously broken at continuous elastic…
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