论文标题

根据现场式旋转轨道扭矩调整磁性隧道连接的开关效率

Tailoring the switching efficiency of magnetic tunnel junctions by the fieldlike spin-orbit torque

论文作者

Krizakova, Viola, Hoffmann, Marco, Kateel, Vaishnavi, Rao, Siddharth, Couet, Sebastien, Kar, Gouri Sankar, Garello, Kevin, Gambardella, Pietro

论文摘要

电流引起的自旋轨道扭矩为开关磁性设备提供了一种多功能工具。在垂直磁体中,扭矩的阻尼样分量是磁化反转的主要驱动力。野外扭矩的程度有助于切换是一个争论的问题。在这里,我们研究了磁性隧道连接的转换,其磁性隧道连接层和W或ta底层的切换分别具有0.3和1的野外扭矩与阻尼状扭矩的比例。我们表明,当静态的平面内磁场以定义自旋轨道扭矩切换的极性时,磁场状扭矩可以帮助或阻碍COFEB的切换,该磁场具有横向到电流的组件。特别是,与标准的划线比对相比,可以利用磁场和电流的非共线来提高开关效率和可靠性。通过实时探测单个切换事件,我们还表明,横向磁场和磁场状扭矩的组合可以加速或减速逆转开始。我们使用微磁模拟验证了观察结果,并将结果推断为具有不同扭矩比的材料。最后,我们提出的设备几何形状利用了野外扭矩来增加内存应用和突触体重产生的密度。

Current-induced spin-orbit torques provide a versatile tool for switching magnetic devices. In perpendicular magnets, the dampinglike component of the torque is the main driver of magnetization reversal. The degree to which the fieldlike torque assists the switching is a matter of debate. Here we study the switching of magnetic tunnel junctions with a CoFeB free layer and either W or Ta underlayers, which have a ratio of fieldlike to dampinglike torque of 0.3 and 1, respectively. We show that the fieldlike torque can either assist or hinder the switching of CoFeB when the static in-plane magnetic field required to define the polarity of spin-orbit torque switching has a component transverse to the current. In particular, the non-collinear alignment of the field and current can be exploited to increase the switching efficiency and reliability compared to the standard collinear alignment. By probing individual switching events in real-time, we also show that the combination of transverse magnetic field and fieldlike torque can accelerate or decelerate the reversal onset. We validate our observations using micromagnetic simulations and extrapolate the results to materials with different torque ratios. Finally, we propose device geometries that leverage the fieldlike torque for density increase in memory applications and synaptic weight generation.

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