Dong H M, Fu P P, Duan Y F, Chang K
School of Materials Science and Physics, China University of Mining and Technology, Xuzhou 221116, China.
SKLSM, Institute of Semiconductors, Chinese Academy of Sciences, P.O. Box 912, Beijing 100083, China.
Nanoscale. 2023 Oct 5;15(38):15643-15648. doi: 10.1039/d3nr02181e.
We study non-trivial spin textures, nanoscale magnetic skyrmions and skyrmioniums, in two-dimensional (2D) Janus magnets, such as MnSTe and MnSeTe, based on the micromagnetism approach and Landau-Lifshitz-Gilbert (LLG) equation. It is found that the Janus magnetic structures can host stable Néel nano-skyrmions with sub-10 nm diameters, and skyrmioniums with zero topological charge. The skyrmion size can be squeezed by external magnetic fields, and even the topological charge can be changed. The diameters of the skyrmioniums are about twice the size of the skyrmions. Moreover, the switching of the topological charge = ±1 can be realized by changing the direction of the external magnetic fields. Our results clearly show that magnetic skyrmions in Janus magnets can be used to construct new types of efficient spintronic nanodevices.
我们基于微磁学方法和朗道-里夫希茨-吉尔伯特(LLG)方程,研究了二维(2D)Janus磁体(如MnSTe和MnSeTe)中的非平凡自旋纹理、纳米级磁斯格明子和斯格明子团。研究发现,Janus磁结构可以容纳直径小于10 nm的稳定奈尔型纳米斯格明子以及拓扑电荷为零的斯格明子团。斯格明子的尺寸可以通过外部磁场压缩,甚至拓扑电荷也可以改变。斯格明子团的直径约为斯格明子尺寸的两倍。此外,通过改变外部磁场方向可以实现拓扑电荷Q = ±1的切换。我们的结果清楚地表明,Janus磁体中的磁斯格明子可用于构建新型高效自旋电子纳米器件。