Criado Juan C, Schenk Sebastian, Spannowsky Michael, Hatton Peter D, Turnbull L A
Department of Physics, Institute for Particle Physics Phenomenology, Durham University, South Road, Durham, DH1 3LE, UK.
Department of Physics, Centre for Materials Physics, Durham University, South Road, Durham, DH1 3LE, UK.
Sci Rep. 2022 Nov 10;12(1):19179. doi: 10.1038/s41598-022-22043-0.
Magnetic skyrmions are meta-stable spin structures that naturally emerge in magnetic materials. While a vast amount of effort has gone into the study of their properties, their counterpart of opposite topological charge, the anti-skyrmion, has not received as much attention. We aim to close this gap by deploying Monte Carlo simulations of spin-lattice systems in order to investigate which interactions support anti-skyrmions, as well as skyrmions of Bloch and Néel type. We find that the combination of ferromagnetic exchange and Dzyaloshinskii-Moriya (DM) interactions is able to stabilize each of the three types, depending on the specific structure of the DM interactions. Considering a three-dimensional spin lattice model, we provide a finite-temperature phase diagram featuring a stable anti-skyrmion lattice phase for a large range of temperatures. In addition, we also shed light on the creation and annihilation processes of these anti-skyrmion tubes and study the effects of the DM interaction strength on their typical size.
磁斯格明子是在磁性材料中自然出现的亚稳态自旋结构。尽管人们在研究它们的性质方面付出了巨大努力,但具有相反拓扑电荷的对应物——反斯格明子却没有受到同样多的关注。我们旨在通过对自旋晶格系统进行蒙特卡罗模拟来填补这一空白,以研究哪些相互作用支持反斯格明子以及布洛赫型和尼尔型斯格明子。我们发现,铁磁交换和Dzyaloshinskii-Moriya(DM)相互作用的组合能够稳定这三种类型中的每一种,这取决于DM相互作用的具体结构。考虑一个三维自旋晶格模型,我们给出了一个有限温度相图,该相图在很大的温度范围内具有稳定的反斯格明子晶格相。此外,我们还阐明了这些反斯格明子管的产生和湮灭过程,并研究了DM相互作用强度对其典型尺寸的影响。