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Ultrafast spin-transfer torque driven by femtosecond pulsed-laser excitation

机译:飞秒脉冲激光激发驱动的超快自旋传递扭矩

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Spin currents have an important role in many proposed spintronic devices, as they govern the switching process of magnetic bits in random access memories or drive domain wall motion in magnetic shift registers. The generation of these spin currents has to be fast and energy efficient for realization of these envisioned devices. Recently it has been shown that femtosecond pulsed-laser excitation of thin magnetic films creates intense and ultrafast spin currents. Here we utilize this method to change the orientation of the magnetization in a magnetic bilayer by spin-transfer torque on sub-picosecond timescales. By analysing the dynamics of the magnetic bilayer after laser excitation, the rich physics governing ultrafast spin-transfer torque are elucidated opening up new pathways to ultrafast magnetization reversal, but also providing a new method to quantify optically induced spin currents generated on femtosecond timescales.
机译:自旋电流在许多提议的自旋电子器件中起着重要作用,因为它们控制着随机存取存储器中磁性位的开关过程或驱动磁性移位寄存器中的畴壁运动。为了实现这些设想的装置,这些自旋电流的产生必须快速且节能。最近已经显示,飞秒脉冲激光激发磁性薄膜会产生强烈且超快的自旋电流。在这里,我们利用这种方法通过亚皮秒级时标上的自旋转移力矩来改变磁性双层中的磁化方向。通过分析激光激发后磁性双层的动力学,阐明了控制超快自旋传递转矩的丰富物理原理,为超快磁化逆转开辟了新途径,而且还提供了一种新的方法来量化飞秒时标上产生的光学感应自旋电流。

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