Directly observed dynamics of distorted vortex cores including asymmetric Bloch walls utilizing soft X-ray microscopy.

M. Im, H. Han, M. Jung, P. Fischer, J. Hong, K. Lee
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Abstract

Spin structures including domain walls and magnetic vortices have attracted enormous interests not only due to their fascinating topological textures but also their potentials in a wealth of technological applications such as high efficient storage and memory devices. In the research of those spin structures, synchrotron-based microscopes have been playing key roles by direct imaging of static and dynamic behaviors of spin structures and therefore providing a powerful insight into the underlying physics of nanospin phenomena and an essential knowledge for their applications in advanced nanotechnologies [1, 2]. In our work, we employed a full-field soft X-ray microscope (XM-1) at Advanced Light Source (ALS) to directly observe non-trivially distorted vortex cores consisting of asymmetric Bloch walls and their dynamics. Fig. 1shows the deformed vortex core observed in an asymmetric permalloy (Py, Ni80Fe20) disk with a height of h = 100 nm, a diameter of D = 500 nm, and an asymmetric ratio of r = 0.3D (a) together with simulated vortex core and the out-of-plane (OOP) magnetic component (mz) larger than 0.7 (b). The distorted vortex core was found to be vortex cores placing non-coaxially on top and bottom surface of the disk, which are connected by an asymmetric Bloch wall creating flux closer domain. Such core structure is significantly distinguished from common circular vortex cores characterized by a single vortex core (polarity, p) aligned on both surfaces of a magnetic element pointing either up or down and a circular in-plane domain (circularity, c) rotating either clockwise or counter-clockwise [3, 4]. Interestingly, the nontrivially shaped vortex core shows an abnormal dynamic behavior. Unlike the traditional gyrotropic motions of circular vortex cores, sloshing motion was observed in the distorted core although micromagnetic simulations demonstrated that vortex cores on top and bottom surfaces still have gyrotropic motions. The unique dynamic motion of the deformed vortex core is likely due to the asymmetric Bloch wall restricting the motions of vortex cores on surfaces [5]. This research was also supported by Leading Foreign Research Institute Recruitment Program through NRF (2012K1A4A3053565) and by the DGIST R&D program of the Ministry of Science, ICT and future Planning (17-BT-02. Work at the ALS was supported by the U.S. Department of Energy (DE-AC02-05CH11231).
利用软x射线显微镜直接观察包括不对称布洛赫壁在内的扭曲涡核的动力学。
包括畴壁和磁涡在内的自旋结构不仅由于其迷人的拓扑结构,而且由于其在高效存储和存储设备等丰富的技术应用方面的潜力而引起了人们的极大兴趣。在这些自旋结构的研究中,基于同步加速器的显微镜通过直接成像自旋结构的静态和动态行为发挥了关键作用,因此为纳米自旋现象的潜在物理学提供了强有力的见解,并为其在先进纳米技术中的应用提供了必要的知识[1,2]。本文利用先进光源(ALS)的全视场软x射线显微镜(XM-1)直接观察了由不对称布洛赫壁组成的非平凡畸变涡核及其动力学。图1显示了变形漩涡核心中观察到非对称坡莫合金(Py Ni80Fe20)磁盘的高度h = 100 nm直径D = 500海里,和一个不对称的比值r = 0.3 D (a)一起模拟漩涡核心和出平面(OOP)磁性组件(mz)大于0.7 (b)。扭曲的核心被发现涡涡核放置在顶部和底部表面引起的磁盘,由非对称布洛赫墙连接创建通量近域。这种磁芯结构明显区别于常见的圆形涡旋磁芯,其特征是单个涡旋磁芯(极性,p)排列在磁性元件的两个表面上,指向向上或向下,平面内圆形区域(圆度,c)顺时针或逆时针旋转[3,4]。有趣的是,非平凡形状的涡核表现出异常的动力行为。与传统的圆形涡旋核的回旋运动不同,尽管微磁模拟表明涡旋核的上、下表面仍然具有回旋运动,但在扭曲的涡旋核中观察到晃动运动。形变涡核的独特动力运动可能是由于不对称的布洛赫壁限制了涡核在[5]表面上的运动。本研究还得到了NRF (2012K1A4A3053565)和科学、信息通信技术和未来规划部DGIST研发计划(17-BT-02)的支持。ALS的工作得到了美国能源部的支持(DE-AC02-05CH11231)。
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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