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由几何形状控制的自旋轨道扭矩磁化翻转。

Spin-orbit torque magnetization switching controlled by geometry.

机构信息

University of Grenoble Alpes INAC-SPINTEC, Grenoble F-38000, France.

CNRS INAC-SPINTEC, Grenoble F-38000, France.

出版信息

Nat Nanotechnol. 2016 Feb;11(2):143-6. doi: 10.1038/nnano.2015.252. Epub 2015 Nov 9.

Abstract

Magnetization reversal by an electric current is essential for future magnetic data storage technology, such as magnetic random access memories. Typically, an electric current is injected into a pillar-shaped magnetic element, and switching relies on the transfer of spin momentum from a ferromagnetic reference layer (an approach known as spin-transfer torque). Recently, an alternative technique has emerged that uses spin-orbit torque (SOT) and allows the magnetization to be reversed without a polarizing layer by transferring angular momentum directly from the crystal lattice. With spin-orbit torque, the current is no longer applied perpendicularly, but is in the plane of the magnetic thin film. Therefore, the current flow is no longer restricted to a single direction and can have any orientation within the film plane. Here, we use Kerr microscopy to examine spin-orbit torque-driven domain wall motion in Co/AlOx wires with different shapes and orientations on top of a current-carrying Pt layer. The displacement of the domain walls is found to be highly dependent on the angle between the direction of the current and domain wall motion, and asymmetric and nonlinear with respect to the current polarity. Using these insights, devices are fabricated in which magnetization switching is determined entirely by the geometry of the device.

摘要

电流引起的磁化反转对于未来的磁数据存储技术至关重要,例如磁性随机存取存储器。通常,将电流注入柱形磁性元件中,通过从铁磁参考层转移自旋动量来实现切换(这种方法称为自旋转移扭矩)。最近,出现了一种替代技术,该技术利用自旋轨道扭矩(SOT),通过直接从晶格传递角动量,无需偏置层即可实现磁化反转。在自旋轨道扭矩中,电流不再垂直施加,而是在磁性薄膜的平面内。因此,电流不再限于单一方向,并且可以在薄膜平面内具有任何方向。在这里,我们使用克尔显微镜检查在顶部带有电流的 Pt 层上的 Co/AlOx 线中不同形状和取向的自旋轨道扭矩驱动的畴壁运动。发现畴壁的位移高度依赖于电流方向和畴壁运动之间的角度,并且相对于电流极性是不对称和非线性的。利用这些见解,制造了完全由器件几何形状决定的磁化切换的器件。

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