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室温下电流诱导的亚 100nm 斯格明子的产生和运动。

Room-Temperature Current-Induced Generation and Motion of sub-100 nm Skyrmions.

机构信息

Unité Mixte de Physique, CNRS, Thales , Univ. Paris-Sud, Université Paris-Saclay, Palaiseau 91767, France.

School of Computer Science, University of Manchester , Manchester M13 9PL, United Kingdom.

出版信息

Nano Lett. 2017 Apr 12;17(4):2703-2712. doi: 10.1021/acs.nanolett.7b00649. Epub 2017 Apr 3.

Abstract

Magnetic skyrmions are nanoscale windings of the spin configuration that hold great promise for technology due to their topology-related properties and extremely reduced sizes. After the recent observation at room temperature of sub-100 nm skyrmions stabilized by interfacial chiral interaction in magnetic multilayers, several pending questions remain to be solved, notably about the means to nucleate individual compact skyrmions or the exact nature of their motion. In this study, a method leading to the formation of magnetic skyrmions in a micrometer-sized track using homogeneous current injection is evidenced. Spin-transfer-induced motion of these small electrical-current-generated skyrmions is then demonstrated and the role of the out-of-plane magnetic field in the stabilization of the moving skyrmions is also analyzed. The results of these experimental observations of spin torque induced motion are compared to micromagnetic simulations reproducing a granular type, nonuniform magnetic multilayer in order to address the particularly important role of the magnetic inhomogeneities on the current-induced motion of sub-100 nm skyrmions for which the material grains size is comparable to the skyrmion diameter.

摘要

磁斯格明子是一种纳米尺度的自旋构型的螺旋缠绕,由于其拓扑相关的特性和极小的尺寸,在技术上具有很大的应用前景。在最近观察到室温下通过磁性多层膜中的界面手性相互作用稳定的亚 100nm 斯格明子时,仍有几个悬而未决的问题有待解决,特别是关于如何引发单个紧凑斯格明子的形成或其运动的确切性质。在这项研究中,证明了一种使用均匀电流注入在微米级轨道中形成磁斯格明子的方法。然后演示了这些由小电流产生的斯格明子的自旋转移诱导运动,并分析了外加磁场在稳定运动斯格明子中的作用。将这些关于自旋扭矩诱导运动的实验观察结果与再现颗粒型非均匀磁性多层膜的微磁模拟结果进行了比较,以解决在材料晶粒尺寸与斯格明子直径相当的情况下,亚 100nm 斯格明子的电流诱导运动中特别重要的磁各向异性的作用。

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