M. Birch, L. Powalla, K. Litzius, V. Nehruji, Ondrej Hovorka, S. Wintz, F. Schulz, D. Mayoh, G. Balakrishnan, Markus Weigand, Marko Burghard, Gisela Schütz
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引用次数: 0
摘要
二维(2D)范德华(vdW)磁体是最近出现的新型天空离子宿主。这一发现为调整拓扑自旋纹理的特性开辟了一个新的材料平台,例如利用二维材料堆叠成异质结构所引起的邻近效应,或直接操纵宿主材料的结构成分。之前的研究已经考虑了 vdW 磁体 Fe3-xGeTe2 块体晶体中不同成分的影响,但迄今为止尚未深入研究其对宿主自旋纹理的影响。在这项研究中,利用实空间 X 射线显微镜对不同缺铁量 x 的 Fe3-xGeTe2 剥离薄片中的磁条畴、天磁子和复合天磁子态进行了成像。这些变化是基本磁性随温度变化而变化的结果,超出了去除自旋所能解释的范围,并且与之前报道的电子能带结构因铁元素缺乏而发生的变化相一致。
Control of stripe, skyrmion and skyrmionium formation in the 2D magnet Fe3−xGeTe2 by varying composition
Two-dimensional (2D) van der Waals (vdW) magnets have recently emerged as novel skyrmion hosts. This discovery has opened a new material platform for tuning the properties of topological spin textures, such as by exploiting proximity effects induced by stacking of 2D materials into heterostructures, or by directly manipulating the structural composition of the host material. Previous works have considered the effect of varied composition in the bulk crystals of the vdW magnet Fe3-xGeTe2, but so far the effects on the hosted spin textures have not been thoroughly investigated. In this work, real-space x-ray microscopy is utilized to image magnetic stripe domain, skyrmion and composite skyrmion states in exfoliated flakes of Fe3-xGeTe2 with varying Fe deficiency x. In combination with supporting mean-field and micromagnetic simulations, the significant alterations in the magnetic phase diagrams of the flakes, and thus the stability of the observed spin textures, are revealed. These arise as a result of the varying temperature dependence of the fundamental magnetic properties, which are greater than can be explained by the removal of spins, and are consistent with previously reported changes in the electronic band structure via the Fe deficiency.
期刊介绍:
2D Materials is a multidisciplinary, electronic-only journal devoted to publishing fundamental and applied research of the highest quality and impact covering all aspects of graphene and related two-dimensional materials.