Ordered and disordered skyrmion states on a square substrate

IF 1.7 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
J. C. Bellizotti Souza, C. J. O. Reichhardt, C. Reichhardt, N. P. Vizarim, P. A. Venegas
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Abstract

We examine the ordering of skyrmions interacting with a square substrate created from a modulation of anisotropy using atomistic simulations. We consider fillings of f = 1.5, 2.0, 2.5, 3.0, and 3.5 skyrmions per potential minimum as a function of magnetic field and sample size. For a filling of f = 2.0, we find various dimer orderings, such as tilted dimer states, as well as antiferromagnetic ordering that is similar to the colloidal dimer ordering seen on square substrates. The ability of the skyrmions to change shape or annihilate produces additional states that do not occur in the colloidal systems. For certain parameters at f = 2.0, half of the skyrmions can annihilate to form a square lattice, or a superlattice of trimers and monomers containing skyrmions of different sizes can form. At lower fields, ordered stretched skyrmion states can appear, and for zero field, there can be ordered stripe states. For f = 3.0, we find ferromagnetic ordered trimers, tilted lattices, columnar lattices, and stretched phases. For fillings of f = 1.5 and 2.5, we find bipartite lattices, different ordered and disordered states, and several extended disordered regions produced by frustration effects.

方形衬底上的有序和无序斯基子态
我们研究了使用原子模拟的各向异性调制产生的方形衬底与skyrmions相互作用的顺序。我们考虑f = 1.5, 2.0, 2.5, 3.0和3.5 skyrmions作为磁场和样本量的函数。对于f = 2.0的填充,我们发现不同的二聚体有序,如倾斜二聚体状态,以及反铁磁有序,类似于在方形衬底上看到的胶体二聚体有序。天幕微粒改变形状或湮灭的能力产生了在胶体系统中不会发生的额外状态。对于f = 2.0的特定参数,一半的skyrmions可以湮灭形成方形晶格,或者可以形成包含不同大小skyrmions的三聚体和单体的超晶格。在低场下,可以出现有序的拉伸斯基米子态,对于零场,可以出现有序的条纹态。当f = 3.0时,我们发现了铁磁有序三聚体、倾斜晶格、柱状晶格和拉伸相。对于f = 1.5和2.5的填充,我们发现了二部格,不同的有序和无序状态,以及挫折效应产生的几个扩展无序区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The European Physical Journal B
The European Physical Journal B 物理-物理:凝聚态物理
CiteScore
2.80
自引率
6.20%
发文量
184
审稿时长
5.1 months
期刊介绍: Solid State and Materials; Mesoscopic and Nanoscale Systems; Computational Methods; Statistical and Nonlinear Physics
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