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Ultrafast magnetization reversal by picosecond electrical pulses

机译:皮秒级电脉冲超快磁化反转

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The field of spintronics involves the study of both spin and charge transport in solid-state devices. Ultrafast magnetism involves the use of femtosecond laser pulses to manipulate magnetic order on subpicosecond time scales. We unite these phenomena by using picosecond charge current pulses to rapidly excite conduction electrons in magnetic metals. We observe deterministic, repeatable ultrafast reversal of the magnetization of a GdFeCo thin film with a single sub–10-ps electrical pulse. The magnetization reverses in ~10 ps, which is more than one order of magnitude faster than any other electrically controlled magnetic switching, and demonstrates a fundamentally new electrical switching mechanism that does not require spin-polarized currents or spin-transfer/orbit torques. The energy density required for switching is low, projecting to only 4 fJ needed to switch a (20 nm)3 cell. This discovery introduces a new field of research into ultrafast charge current–driven spintronic phenomena and devices.
机译:自旋电子学领域涉及固态器件中自旋和电荷传输的研究。超快磁性涉及飞秒激光脉冲的使用,以在皮秒以下的时间尺度上操纵磁阶。我们使用皮秒充电电流脉冲来快速激发磁性金属中的传导电子,从而将这些现象结合在一起。我们观察到具有单个亚10 ps电脉冲的GdFeCo薄膜的磁化强度具有确定性,可重复性,并且可重复地快速重复。磁化强度以〜10 ps的速度反向,比任何其他电控磁性开关快一个数量级,并且演示了一种根本上新型的电开关机制,该机制不需要自旋极化电流或自旋转移/轨道转矩。切换所需的能量密度很低,预计仅切换到(20 nm) 3 电池所需的能量仅为4 fJ。这一发现为超快充电电流驱动的自旋电子现象和器件的研究开辟了一个新领域。

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