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Current driven dynamics of magnetic domain walls in permalloy nanowires.

机译:坡莫合金纳米线中磁畴壁的电流驱动动力学。

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摘要

The significant advances in micro-fabrication techniques opened the door to access interesting properties in solid state physics. With regard to magnetic materials, geometrical confinement of magnetic structures alters the defining parameters that govern magnetism. For example, development of single domain nano-pillars made from magnetic multilayers led to the discovery of electrical current controlled magnetization switching, which revealed the existence of spin transfer torque.; Magnetic domain walls (DWs) are boundaries in magnetic materials that divide regions with distinct magnetization directions. DWs play an important role in the magnetization reversal processes of both bulk and thin film magnetic materials. The motion of DW is conventionally controlled by magnetic fields. Recently, it has been proposed that spin polarized current passed across the DW can also control the motion of DWs. Current in most magnetic materials is spin-polarized, due to spin-dependent scattering of the electrons, and thus can deliver spin angular momentum to the DW, providing a "spin transfer" torque on the DW which leads to DW motion. In addition, owing to the development of micro-fabrication techniques, geometrical confinement of magnetic materials enables creation and manipulation of a "single" DW in magnetic nanostructures. New paradigms for DW-based devices are made possible by the direct manipulation of DWs using spin polarized electrical current via spin transfer torque.; This dissertation covers research on current induced DW motion in magnetic nanowires. Fascinating effects arising from the interplay between DWs with spin polarized current will be revealed.
机译:微制造技术的重大进步为获取固态物理学中令人关注的特性打开了大门。关于磁性材料,磁性结构的几何限制改变了控制磁性的定义参数。例如,由磁性多层材料制成的单畴纳米柱的开发导致发现了电流控制的磁化开关,这揭示了自旋转移转矩的存在。磁畴壁(DWs)是磁性材料中的边界,该边界划分了具有不同磁化方向的区域。 DW在块状和薄膜磁性材料的磁化反转过程中都起着重要作用。 DW的运动通常由磁场控制。最近,已经提出,穿过DW的自旋极化电流也可以控制DW的运动。由于电子的自旋相关散射,大多数磁性材料中的电流被自旋极化,因此可以将自旋角动量传递到DW,从而在DW上提供“自旋传递”转矩,从而导致DW运动。另外,由于微制造技术的发展,磁性材料的几何限制使得能够在磁性纳米结构中创建和操纵“单个” DW。通过使用自旋极化电流通过自旋传递转矩直接操纵DW,使得基于DW的设备的新范例成为可能。本论文涵盖了磁性纳米线中电流感应DW运动的研究。将揭示DW与自旋极化电流之间相互作用所产生的迷人效果。

著录项

  • 作者

    Hayashi, Masamitsu.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 O49;
  • 关键词

  • 入库时间 2022-08-17 11:40:29

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