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通过隧道非共线磁电阻对磁 skyrmion 的电检测。

Electrical detection of magnetic skyrmions by tunnelling non-collinear magnetoresistance.

机构信息

Department of Physics, University of Hamburg, Jungiusstrasse 11, Hamburg 20355, Germany.

Institute of Theoretical Physics and Astrophysics, Christian-Albrechts-Universität zu Kiel, Leibnizstrasse 15, Kiel 24098, Germany.

出版信息

Nat Nanotechnol. 2015 Dec;10(12):1039-42. doi: 10.1038/nnano.2015.218. Epub 2015 Oct 5.

Abstract

Magnetic skyrmions are localized non-collinear spin textures with a high potential for future spintronic applications. Skyrmion phases have been discovered in a number of materials and a focus of current research is to prepare, detect and manipulate individual skyrmions for implementation in devices. The local experimental characterization of skyrmions has been performed by, for example, Lorentz microscopy or atomic-scale tunnel magnetoresistance measurements using spin-polarized scanning tunnelling microscopy. Here we report a drastic change of the differential tunnel conductance for magnetic skyrmions that arises from their non-collinearity: mixing between the spin channels locally alters the electronic structure, which makes a skyrmion electronically distinct from its ferromagnetic environment. We propose this tunnelling non-collinear magnetoresistance as a reliable all-electrical detection scheme for skyrmions with an easy implementation into device architectures.

摘要

磁斯格明子是具有局域非共线自旋结构的一种物质,在未来的自旋电子学应用中具有很大的潜力。在许多材料中已经发现了斯格明子相,目前的研究重点是制备、检测和操纵单个斯格明子,以便在器件中实现。通过洛伦兹显微镜或原子尺度的隧道磁阻测量(使用自旋极化扫描隧道显微镜)等方法,对斯格明子进行了局部实验特性描述。在这里,我们报告了磁斯格明子的微分隧道电导的剧烈变化,这是由于它们的非共线性:自旋通道之间的混合局部改变了电子结构,这使得斯格明子在电子学上与铁磁环境明显不同。我们提出这种隧道非共线磁电阻作为一种可靠的全电检测斯格明子的方案,并且很容易将其集成到器件结构中。

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