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Domain-wall dynamics driven by adiabatic spin-transfer torques

机译:绝热自旋转移力矩驱动的畴壁动力学

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摘要

In a first approximation, known as the adiabatic process, the direction of the spin polarization of currents is parallel to the local magnetization vector in a domain wall. Thus the spatial variation of the direction of the spin current inside the domain wall results in an adiabatic spin-transfer torque on the magnetization. We show that domain-wall motion driven by this spin torque has many unique features that do not exist in the conventional wall motion driven by a magnetic field. By analytically and numerically solving the Landau-Lifshitz-Gilbert equation along with the adiabatic spin torque in magnetic nanowires, we find that the domain wall has its maximum velocity at the initial application of the current but the velocity decreases to zero as the domain wall begins to deform during its motion. We have computed domain-wall displacement and domain-wall deformation of nanowires, and concluded that the spin torque based on the adiabatic propagation of the spin current in the domain wall is unable to maintain wall movement. We also introduce the concept of domain-wall inductance to characterize the capacity of the spin-torque-induced magnetic energy stored in a domain wall. In the presence of domain-wall pinning centers, we construct a phase diagram for the domain-wall depinning by the combined action of the magnetic field and the spin current.
机译:在称为绝热过程的第一近似中,电流的自旋极化方向平行于畴壁中的局部磁化矢量。因此,畴壁内部的自旋电流的方向的空间变化导致磁化上的绝热自旋传递扭矩。我们表明,由该自旋转矩驱动的畴壁运动具有许多独特的功能,而在由磁场驱动的常规壁运动中则不存在。通过对磁性纳米线中的Landau-Lifshitz-Gilbert方程和绝热自旋扭矩进行解析和数值求解,我们发现畴壁在电流的初始施加时具有最大速度,但随着畴壁开始时速度减小至零在运动过程中变形。我们已经计算了纳米线的畴壁位移和畴壁变形,并得出结论,基于自旋电流在畴壁中的绝热传播的自旋转矩无法维持壁的运动。我们还介绍了磁畴壁电感的概念,以表征存储在磁畴壁中的自旋转矩感应的磁能的容量。在存在畴壁钉扎中心的情况下,我们通过磁场和自旋电流的组合作用构造了畴壁钉扎的相图。

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