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Interaction between collective coordinates and quasiparticles in spintronic devices.

机译:自旋电子器件中集体坐标与准粒子之间的相互作用。

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摘要

In this dissertation several aspects of the interaction of collective and quasi-particle degrees of freedom are studied. This is done in the context of spin dependent transport effects with applications for spintronics devices.;In ferromagnetic metals the effects of quasi-particle currents on spin textures, either domain wall structures or spin waves, are discussed. In nano-magnetic heterostructures, the effects acquire the form of spin transfer torques. The microscopic origin of these effects, as discussed in this work, relies on the relation between exchange fields and spin densities. The presence of the current modifies the spin density. In consequence the exchange fields are also affected by the current.;It is these modifications on the exchange fields that are able to alter the dynamics of the collective fields. It is shown how this rather abstract picture of spin transfer reduces to the usual description, that can be found in the extensive literature on the subject, based on a bookkeeping argument and on spin conservation. The most important feature of this picture, as discussed in the text, is that it allows for generalizations of the spin transfer effects to systems were the spin conservation arguments fail or are of little use. We discuss applications of this view to spin transfer torques on systems with spin-orbit interaction and for systems with antiferromagnetic elements. In the latter case, a preliminary model study of spin dependent transport in antiferromagnets is reported, it has revealed that (i) giant magnetoresistive effects are possible, and (ii) nanostructures containing antiferromagnetic elements will exhibit current-induced magnetization dynamics. In particular it turns out that, contrary to the ferromagnetic case, the spin transfer torques act throughout the entire free antiferromagnet to cooperatively switch it, a result of the special symmetries of the antiferromagnetic state. This implies that the critical current for inducing collective magnetization dynamics is likely to be lower in antiferromagnetic metal nanostructures than in ferromagnetic spin valves.
机译:本文研究了集体和准粒子自由度相互作用的几个方面。这是在与自旋电子器件相关的自旋相关输运效应的背景下完成的。在铁磁金属中,讨论了准粒子电流对自旋纹理(畴壁结构或自旋波)的影响。在纳米磁性异质结构中,这些效应获得了自旋传递转矩的形式。如本文所述,这些效应的微观起源取决于交换场与自旋密度之间的关系。电流的存在会改变自旋密度。结果,交换场也受到电流的影响;正是对交换场的这些修改才能够改变集合场的动态。它显示了这种自旋转移的抽象图是如何简化为通常的描述的,该描述可以在关于簿记的基础上和基于自旋守恒的大量文献中找到。如本文所述,此图片的最重要特征是,它可以自旋守恒参数失败或使用很少时,将自旋转移效应推广到系统。我们讨论了该视图在自旋轨道相互作用的系统以及反铁磁元件的系统上自旋传递转矩的应用。在后一种情况下,据报道对反铁磁体中的自旋依赖性输运进行了初步模型研究,结果表明,(i)可能产生巨大的磁阻效应,并且(ii)包含反铁磁元素的纳米结构将表现出电流感应的磁化动力学。特别是,与铁磁情况相反,由于反铁磁状态的特殊对称性,自旋传递转矩在整个自由反铁磁体中起作用以协同切换。这意味着在反铁磁金属纳米结构中,引起集体磁化动力学的临界电流可能会比在铁磁自旋阀中更低。

著录项

  • 作者

    Nunez, Alvaro Sebastian.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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