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Nonlinear spin dynamics and ultra-fast precessional switching.

机译:非线性自旋动力学和超快速进动切换。

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摘要

This thesis is intended to provide a theoretical analysis of magnetization dynamics in nanometer scale structures over picosecond time scales. This research has been motivated by promising technological applications in the area of magnetic data storage, as well as by pure scientific quest for ultra-fast spin dynamics in nanostructures.; The present paradigm of magnetic data storage is approaching its fundamental limits for areal storage density, as well as for speed in data processing. As a result, there is an urgent need for reliable alternatives to current magnetic recording media, which are based on longitudinal thin film, and to the conventional mechanism of magnetization reversal, based on damping switching. In this dissertation, faster modes of magnetization reversals, using precessional magnetization motion, are analyzed in traditional longitudinal media and in its promising alternatives: perpendicular and patterned media. This analysis uses multi-spin description of magnetic nanoparticles and continuum micromagnetics for thin film media. The spins dynamics in both discrete and continuum versions is modeled by Landau Lifshitz type equations. These models are introduced in Chapter 2, subsequent to an overview of magnetic recording media offered in Chapter 1.; The analytical study of precessional switching in perpendicular thin film media is presented in Chapter 3. The features of precessional magnetization switching and conventional magnetization reversal are compared, and the design of magnetic field pulses that guarantee precessional switching is discussed. In Chapter 4, the study of precessional magnetization switching in longitudinal thin film media is undertaken. After a short summary of the research studies on this topic, the inverse problem approach to the analysis of precessional switching in these media is presented. This approach leads to explicit expressions for the magnetic field pulses that guarantee the precessional switching.; The study of surface anisotropy effects on magnetization reversals in nanoparticles is presented in Chapter 5. The expressions for critical magnetic fields that guarantee the quasi-static and precessional reversals are analytically derived for the case of very strong exchange and weak surface anisotropy. These analytical results are also used to test the numerical approach, which is applied to the general case of the problem.
机译:本文旨在为皮秒级时间尺度内的纳米尺度结构的磁化动力学提供理论分析。这项研究的动机是在磁数据存储领域中有希望的技术应用,以及对纳米结构中超快自旋动力学的纯科学探索。磁数据存储的当前范例正在接近其对于面存储密度以及数据处理速度的基本极限。结果,迫切需要可靠的替代品,以替代基于纵向薄膜的当前磁记录介质,以及基于阻尼切换的常规磁化反转机制。本文在传统的纵向介质及其有前途的替代方案:垂直和有图案的介质中,分析了使用进动磁化运动的更快的磁化反转模式。该分析对薄膜介质使用磁性纳米粒子和连续微磁性的多自旋描述。离散版本和连续版本中的自旋动力学均由Landau Lifshitz类型方程建模。在第1章概述了磁记录媒体之后,第2章介绍了这些模型。第3章介绍了垂直薄膜介质中进动切换的分析研究。比较了进动磁化切换和常规磁化反转的特征,并讨论了保证进动切换的磁场脉冲的设计。在第四章中,研究了纵向薄膜介质中的进动磁化转换。在对该主题的研究进行简短总结之后,提出了一种反问题方法,用于分析这些媒体中的进动切换。这种方法导致了磁场脉冲的明确表达,从而保证了进动切换。第5章介绍了表面各向异性对纳米粒子中磁化强度反转的影响。对于交换非常强且表面各向异性较弱的情况,可以解析得出保证准静态和进动反转的临界磁场表达式。这些分析结果还用于测试数值方法,该方法适用于问题的一般情况。

著录项

  • 作者

    Dimian, Mihai.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Engineering Electronics and Electrical.; Physics Astronomy and Astrophysics.; Mathematics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术 ; 天文学 ; 数学 ;
  • 关键词

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