Meron-mediated phase transitions in quasi-two-dimensional chiral magnets with easy-plane anisotropy: successive transformation of the hexagonal skyrmion lattice into the square lattice and into the tilted FM state
Andrey O. Leonov

TL;DR
This paper investigates the structural phase transitions in quasi-two-dimensional chiral magnets, revealing how skyrmion lattices evolve into square arrangements and eventually into a tilted ferromagnetic state through meron-mediated processes.
Contribution
It introduces a detailed mechanism of skyrmion lattice transformation involving merons and anti-merons, highlighting their roles in phase transitions and dynamic responses.
Findings
Hexagonal skyrmion lattice transforms into a distorted rhombic lattice.
Square skyrmion lattice forms via merging of merons.
Spin-wave modes involve complex meron dynamics.
Abstract
I revisit the well-known structural transition between hexagonal and square skyrmion lattices induced by increasing easy-plane anisotropy in quasi-two-dimensional chiral magnets. I show that the hexagonal skyrmion order, by the first-order phase transition, transforms into a distorted (rhombic) skyrmion lattice. The transition is mediated by merons and anti-merons emerging within the boundaries between skyrmion cells. Since the energy density associated with anti-merons is highly positive owing to the wrong rotational sense, one anti-meron per unit cell annihilates: anti-merons are squeezed by the pairs of approaching merons at the opposite sides of the hexagonal unit cell. Further, in a narrow range of anisotropy values, the distorted skyrmion lattice gradually transforms into a perfect square order of skyrmions (alternatively called "a square meron-antimeron crystal") when two merons…
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Taxonomy
TopicsMagnetic properties of thin films · Physics of Superconductivity and Magnetism · Theoretical and Computational Physics
