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Low energy dynamics of non-perturbative structures in high energy and condensed matter systems

机译:高能和凝聚态系统中非扰动结构的低能动力学

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摘要

This dissertation presents some results on the application of low energy effective field theory vortex dynamics in condensed matter and materials systems. For the first half of the presentation we discuss the possibility of non-Abelian gapless excitations appearing on U(1) vortices in the B phase of superfluid 3He. Specifically, we focus on superfluid 3He-like systems with an enhanced SO(3) L rotational symmetry allowing for non-Abelian excitations to exist in the gapless spectrum of vortices. We consider a variety of vortices in the B-phase with different levels of symmetry breaking in the vortex core, and show conditions on the phenomenological parameters for certain vortices to be stable in the bulk. We then proceed to develope the low energy effective field theory of the various vortex types and consider the quantization of excitations. The process of quantization leads to interesting surprises due to non-lorentz symmetry that are not typically encountered in the analogous cases of U(1) x SU(N) gauge models discussed in high energy theory.;The second half of this dissertation focuses on two types of vortices that appear in a particular model that is a modification of the well known Abelian-Higgs model. The specific modification includes a vector spin field in addition to the U(1) Higgs field and gauge fields of the original model. The particular form of the lagrangian results in a cholesteric vacuum structure, with interesting consequences for the vortices in the model. We observe the effects of such a modification on the well known U (1) vortex appearing in the original model due to the emergent spin field in the vortex core. We also consider a new type of vortex that is most closely related to a spin vortex. This vortex appears due to the topology introduced by the new spin field. The low energy effective field theory is also investigated for this type of vortex.
机译:本文提出了低能有效场论涡旋动力学在凝聚态物质和材料系统中的一些应用结果。对于本演讲的前半部分,我们讨论了超流3He B相中U(1)涡旋上出现非阿贝尔无间隙激发的可能性。具体来说,我们专注于具有增强的SO(3)L旋转对称性的超流体3He样系统,从而允许非阿贝尔激发存在于涡的无间隙光谱中。我们考虑了B相中的各种涡旋,涡旋核心中对称性的破坏程度不同,并显示了某些涡旋现象的现象学参数在整体中稳定的条件。然后,我们继续发展各种涡流类型的低能有效场理论,并考虑激发的量化。由于非劳伦兹对称性,量化过程导致了令人惊讶的意外,这在高能理论中讨论的U(1)x SU(N)量规模型的类似情况中通常不会遇到。特定模型中出现的两种类型的涡流是对众所周知的Abelian-Higgs模型的修改。除了原始模型的U(1)希格斯场和规范场外,特定修改还包括向量自旋场。拉格朗日的特殊形式导致胆甾型真空结构,对模型中的涡旋产生有趣的结果。由于涡旋核心中出现了自旋场,我们观察到这种修饰对原始模型中出现的众所周知的U(1)涡旋的影响。我们还考虑了与自旋涡旋最密切相关的新型涡旋。由于新的自旋场引入了拓扑结构,因此出现了该漩涡。还针对这种类型的涡旋研究了低能有效场理论。

著录项

  • 作者

    Peterson, Adam Joseph.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Condensed matter physics.;High energy physics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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