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Lorentz microscopy and electron holography studies of current-excited magnetization dynamics in Permalloy nanowires

机译:坡莫合金纳米线中电流激发的磁化动力学的洛伦兹显微镜和电子全息研究

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摘要

We investigate the magnetization dynamics induced by a current pulse in Permalloy nanowires by means of Lorentz microscopy and electron holography, together with simultaneous transport measurements. A variety of magnetization dynamics is observed below the Curie temperature. Local transformation, displacement of magnetic domain wall and nucleation and annihilation of magnetic domain, i.e. magnetization reversal are presented as a function of current density flowing into the wire and wire resistance. Shift of threshold current densities for domain wall displacement and magnetization reversal when changing current pulse duration and thermal conductance of the sample supports that observed behavior of magnetic domains and domain walls is associated with the spin transfer torque and thermal excitation. For the well-controlled magnetization reversal, we microscopically demonstrate that applying small in-plane magnetic field is very effective to controllably nucleate and erase the magnetic domain using a current pulse. Stochastic nature of the magnetization reversal due to spin-wave and thermal excitation in the absence of magnetic field completely disappears and turns into deterministic in the presence of small magnetic field, which enables the magnetization reversal control using current.
机译:我们通过洛伦兹显微镜和电子全息图研究了坡莫合金纳米线中电流脉冲引起的磁化动力学,同时进行了传输测量。在居里温度以下观察到各种磁化动力学。呈现出局部转变,磁畴壁的位移以及磁畴的成核和an灭,即磁化反转,这是流入导线和导线电阻的电流密度的函数。当改变电流脉冲持续时间和样品的热导率时,畴壁位移和磁化反转的阈值电流密度的变化支持观察到的磁畴和畴壁的行为与自旋传递转矩和热激发相关。对于控制良好的磁化反转,我们从微观上证明了施加较小的平面内磁场对于使用电流脉冲可控地成核和消除磁畴非常有效。在没有磁场的情况下,由于自旋波和热激励而引起的磁化反转的随机性完全消失,并且在存在小磁场的情况下变成确定性的,这使得能够使用电流进行磁化反转控制。

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