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Studies of nanomagnetism using synchrotron-based x-ray photoemission electron microscopy (X-PEEM)

机译:使用基于同步加速器的X射线光发射电子显微镜(X-PEEM)研究纳米磁性

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As interest in magnetic devices has increased over the last 20 years, research into nanomagnetism has experienced a corresponding growth. Device applications from magnetic storage to magnetic logic have compelled interest in the influence of geometry and finite size on magnetism and magnetic excitations, in particular where the smallest dimensions reach the important magnetic interaction length scales. The dynamical behavior of nanoscale magnets is an especially important subset of research, as these phenomena are both critical for device physics and profoundly influenced by finite size. At the same time, nanoscale systems offer unique geometries to promote and study model systems, such as magnetic vortices, leading to new fundamental insights into magnetization dynamics. A wide array of experimental and computational techniques have been applied to these problems. Among these, imaging techniques that provide real-space information on the magnetic order are particularly useful. X-ray microscopy offers several advantages over scanning probe or optical techniques, such as high spatial resolution, element specificity and the possibility for high time resolution. Here, we review recent contributions using static and time-resolved x-ray photoemission electron microscopy to nanomagnetism research.
机译:在过去的20年中,随着对磁性器件的兴趣不断增长,对纳米磁性的研究也经历了相应的增长。从磁存储到磁逻辑的设备应用已引起人们对几何形状和有限尺寸对磁性和磁激励的影响的兴趣,特别是在最小尺寸达到重要的磁相互作用长度尺度的情况下。纳米级磁体的动力学行为是研究的一个特别重要的子集,因为这些现象对于设备物理至关重要,并且受有限尺寸的影响很大。同时,纳米级系统提供了独特的几何形状来促进和研究模型系统,例如磁涡流,从而为磁化动力学提供了新的基础知识。各种各样的实验和计算技术已应用于这些问题。其中,提供有关磁阶的实空间信息的成像技术特别有用。与扫描探针或光学技术相比,X射线显微术具有多个优势,例如高空间分辨率,元素特异性和高时间分辨率的可能性。在这里,我们回顾了使用静态和时间分辨的X射线光发射电子显微镜对纳米磁性研究的最新贡献。

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