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Coherent sub-nanosecond switching of perpendicular magnetization by the field-like spin-orbit torque without external magnetic field

机译:不具有外部磁场的场状自旋轨道扭矩的相干亚纳秒切换垂直磁化

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Current-induced spin-orbit torque (SOT) is a very recently discovered phenomenon which provides efficient ways to control and manipulate the magnetization. It allows to use the spin-orbit interaction in the bulk or at the interface of a heavy metal (HM) to inject angular momentum in an adjacent ferromagnet (FM) [1-3]. Even though its origin either from Rashba or spin Hall effects is still under debate, switching the magnetization of nanostructures by spin-orbit torques is very promising for applications both in terms of speed and energetic efficiency. In this work, we study the influence of one of the components of the torques, the field-like torque, for example in Ta/CoFeB/MgO trilayers [4]. This study focuses on the macrospin-based magnetization switching of small devices with a uniform magnetization (50×50 nm) which are of significant interest for applications.
机译:电流诱导的旋转轨道扭矩(SOT)是最近发现的现象,可提供有效的控制和操纵磁化的方法。它允许在体积中或在重金属(HM)的界面处使用旋转轨道相互作用,以在相邻的铁圆形(FM)中注入角动量[1-3]。即使它的起源来自Rashba或Spin Hall效果仍然在辩论中,通过旋转轨道转矩切换纳米结构的磁化是在速度和能量效率方面的应用非常有前途。在这项工作中,我们研究了扭矩的一个部件的影响,例如在Ta / CoFeB / MgO三层[4]中的扭矩。本研究重点介绍了具有均匀磁化(50×50nm)的小型器件的MacroSpin基磁化切换,这对应用具有重要兴趣。

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