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电流驱动的铁磁金属层中 Rashba 效应引起的自旋扭矩。

Current-driven spin torque induced by the Rashba effect in a ferromagnetic metal layer.

出版信息

Nat Mater. 2010 Mar;9(3):230-4. doi: 10.1038/nmat2613. Epub 2010 Jan 10.

DOI:10.1038/nmat2613
PMID:20062047
Abstract

Methods to manipulate the magnetization of ferromagnets by means of local electric fields or current-induced spin transfer torque allow the design of integrated spintronic devices with reduced dimensions and energy consumption compared with conventional magnetic field actuation. An alternative way to induce a spin torque using an electric current has been proposed based on intrinsic spin-orbit magnetic fields and recently realized in a strained low-temperature ferromagnetic semiconductor. Here we demonstrate that strong magnetic fields can be induced in ferromagnetic metal films lacking structure inversion symmetry through the Rashba effect. Owing to the combination of spin-orbit and exchange interactions, we show that an electric current flowing in the plane of a Co layer with asymmetric Pt and AlO(x) interfaces produces an effective transverse magnetic field of 1 T per 10(8) A cm(-2). Besides its fundamental significance, the high efficiency of this process makes it a realistic candidate for room-temperature spintronic applications.

摘要

通过局部电场或电流诱导的自旋转移扭矩来操纵铁磁体的磁化的方法,与传统的磁场驱动相比,可以设计出具有更小尺寸和更低能耗的集成自旋电子器件。最近,基于本征自旋轨道磁场,并在应变低温铁磁半导体中实现了一种使用电流来感应自旋扭矩的替代方法。在这里,我们证明了在缺乏结构反转对称性的铁磁金属薄膜中,可以通过 Rashba 效应感应出强磁场。由于自旋轨道和交换相互作用的结合,我们表明,在具有不对称 Pt 和 AlO(x) 界面的 Co 层平面中流动的电流会产生每 10(8) A cm(-2) 有效横向磁场 1 T。除了其基本意义之外,这个过程的高效率使其成为室温自旋电子学应用的一个现实的候选方案。

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