论文标题
旋转结构与分离的磁性Bloch和Neel Skyrmions的相对造影剂成像的关系
Spin structure relation to phase contrast imaging of isolated magnetic Bloch and Neel skyrmions
论文作者
论文摘要
磁性天空是具有较大数据密度的将来存储设备的有希望的候选人。已经发现,各种各样的材料可以主持天空,直到室温政权。通常在透射电子显微镜(TEM)中进行的Lorentz显微镜是表征真实空间中天空样品的最重要工具之一。使用数值计算,这项工作将TEM中的相位对比与孤立的Neel或Bloch Skyrmion(两种最常见的Skyrmion类型)的实际磁化曲线相关联。在使用的Skyrmion模型的框架内,结果独立于Skyrmion的尺寸和壁宽和比例,纯粹的磁性标本的样品厚度。提供了简单的规则来提取纯Bloch或Neel Skyrmions的实际天空配置,而无需模拟。此外,提出了符合实验期望的Neel Skyrmions上的第一差相比(DPC)测量值,并展示所述原理。这项工作与材料科学有关,在这些科学中,它可以通过方便的表征来实现Skyrmion概况的工程。
Magnetic skyrmions are promising candidates for future storage devices with a large data density. A great variety of materials have been found that host skyrmions up to the room-temperature regime. Lorentz microscopy, usually performed in a transmission electron microscope (TEM), is one of the most important tools for characterizing skyrmion samples in real space. Using numerical calculations, this work relates the phase contrast in a TEM to the actual magnetization profile of an isolated Neel or Bloch skyrmion, the two most common skyrmion types. Within the framework of the used skyrmion model, the results are independent of skyrmion size and wall width and scale with sample thickness for purely magnetic specimens. Simple rules are provided to extract the actual skyrmion configuration of pure Bloch or Neel skyrmions without the need of simulations. Furthermore, first differential phase contrast (DPC) measurements on Neel skyrmions that meet experimental expectations are presented and showcase the described principles. The work is relevant for material sciences where it enables the engineering of skyrmion profiles via convenient characterization.