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在几何受限纳米条中,创造具有创纪录高温稳定性的单链纳米斯格明子泡。

Creation of Single Chain of Nanoscale Skyrmion Bubbles with Record-High Temperature Stability in a Geometrically Confined Nanostripe.

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences , Beijing 100190, China.

Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST) , Thuwal 23955-6900, Saudi Arabia.

出版信息

Nano Lett. 2018 Feb 14;18(2):1274-1279. doi: 10.1021/acs.nanolett.7b04900. Epub 2018 Jan 9.

Abstract

Nanoscale topologically nontrivial spin textures, such as magnetic skyrmions, have been identified as promising candidates for the transport and storage of information for spintronic applications, notably magnetic racetrack memory devices. The design and realization of a single skyrmion chain at room temperature (RT) and above in the low-dimensional nanostructures are of great importance for future practical applications. Here, we report the creation of a single skyrmion bubble chain in a geometrically confined FeSn nanostripe with a width comparable to the featured size of a skyrmion bubble. Systematic investigations on the thermal stability have revealed that the single chain of skyrmion bubbles can keep stable at temperatures varying from RT up to a record-high temperature of 630 K. This extreme stability can be ascribed to the weak temperature-dependent magnetic anisotropy and the formation of edge states at the boundaries of the nanostripes. The realization of the highly stable skyrmion bubble chain in a geometrically confined nanostructure is a very important step toward the application of skyrmion-based spintronic devices.

摘要

纳米尺度的拓扑非平庸自旋纹理,如磁 skyrmion,已被确定为用于自旋电子应用的信息传输和存储的有前途的候选者,特别是磁性跑道式存储器设备。在低维纳米结构中设计和实现室温(RT)及以上的单个 skyrmion 链对于未来的实际应用非常重要。在这里,我们报告了在宽度与 skyrmion bubble 的特征尺寸相当的几何受限的 FeSn 纳米条中创建单个 skyrmion bubble 链。对热稳定性的系统研究表明,单个 skyrmion bubble 链可以在从 RT 到创纪录的 630 K 的温度范围内保持稳定。这种极端稳定性可以归因于弱的温度相关磁各向异性和纳米条边界处的边缘态的形成。在几何受限的纳米结构中实现高度稳定的 skyrmion bubble 链是实现基于 skyrmion 的自旋电子器件应用的重要一步。

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