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Inertial displacement of a domain wall excited by ultra-short circularly polarized laser pulses

机译:超短圆偏振激光脉冲激发的畴壁的惯性位移

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摘要

Domain wall motion driven by ultra-short laser pulses is a pre-requisite for envisaged low-power spintronics combining storage of information in magnetoelectronic devices with high speed and long distance transmission of information encoded in circularly polarized light. Here we demonstrate the conversion of the circular polarization of incident femtosecond laser pulses into inertial displacement of a domain wall in a ferromagnetic semiconductor. In our study, we combine electrical measurements and magneto-optical imaging of the domain wall displacement with micromagnetic simulations. The optical spin-transfer torque acts over a picosecond recombination time of the spin-polarized photo-carriers that only leads to a deformation of the initial domain wall structure. We show that subsequent depinning and micrometre-distance displacement without an applied magnetic field or any other external stimuli can only occur due to the inertia of the domain wall.
机译:由超短激光脉冲驱动的畴壁运动是设想的低功率自旋电子器件的先决条件,该器件将磁电子设备中的信息存储与圆偏振光中编码的信息的高速和长距离传输相结合。在这里,我们演示了入射飞秒激光脉冲的圆极化到铁磁半导体中畴壁的惯性位移的转换。在我们的研究中,我们将电学测量和畴壁位移的磁光成像与微磁模拟相结合。光学自旋传递转矩在皮秒的自旋极化光载流子复合时间内起作用,这只会导致初始畴壁结构变形。我们表明,随后的钉扎和微米距离位移而不施加磁场或任何其他外部刺激只能由于畴壁的惯性而发生。

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