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Dynamics of field-driven domain-wall propagation in ferromagnetic nanowires

机译:铁磁纳米线中场驱动畴壁传播的动力学

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摘要

Ferromagnetic nanowires are likely to play an important role in future spintronk devices.Magnetic domain walls,which separate regions of opposing magnetization in a nanowire,can be manipulated and used to encode information for storage or to perform logic operations.Owing to their reduced size and dimensionality,the characterization of domain-wall motion is an important problem.To compete with other technologies,high-speed operation,and hence fast wall propagation,is essential.However,the domain-wall dynamics in nanowires has only been investigated in the last five years and some results indicate a drastic slowing down of wall motion in higher magnetic fields.Here we show that the velocity-field characteristic of a domain wall in a nanowire shows two linear regimes,with the wall mobility at high fields reduced tenfold from that at low fields.The transition is marked by a region of negative differential mobility and highly irregular wall motion.These results are in accord with theoretical predictions that,above a threshold field,uniform wall movement gives way to turbulent wall motion,leading to a substantial drop in wall mobility.Our results help resolve contradictory reports of wall propagation velocities in laterally confined geometries,and underscore the importance of understanding and enhancing the breakdown field for practical applications.
机译:铁磁纳米线可能会在未来的自旋加速器设备中发挥重要作用。磁畴壁(将纳米线中相反磁化的区域分隔开来)可以被操纵并用于编码信息以进行存储或执行逻辑操作。尺寸,畴壁运动的表征是一个重要的问题。与其他技术竞争,高速操作以及因此快速的壁传播是必不可少的。然而,纳米线中的畴壁动力学只是在最近进行了研究。五年,一些结果表明在高磁场中壁运动急剧减慢。在这里,我们显示了纳米线中畴壁的速度场特征显示出两种线性状态,高场中的壁迁移率比那降低了十倍。在低场的情况下,该过渡以负的微分活动性和高度不规则的壁运动区域为标志,这些结果符合理论所有的预测都表明,在阈值场以上,均匀的壁运动会被湍流的壁运动所取代,从而导致壁流动性大幅下降。我们的结果有助于解决在侧向受限的几何形状中壁传播速度的相互矛盾的报道,并强调了理解和认识的重要性。增强实际应用中的击穿范围。

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  • 来源
    《Nature Materials》 |2005年第10期|p.741-744|共4页
  • 作者单位

    Department of Physics,The University of Texas at Austin,Austin,Texas 78712-0264,USA;

    Department of Physics,The University of Texas at Austin,Austin,Texas 78712-0264,USA;

    Department of Physics,The University of Texas at Austin,Austin,Texas 78712-0264,USA;

    Department of Physics,The University of Texas at Austin,Austin,Texas 78712-0264,USA;

    Department of Physics,The University of Texas at Austin,Austin,Texas 78712-0264,USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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