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Developing a Toolkit for Experimental Studies of Two-Dimensional Quantum Turbulence in Bose-Einstein Condensates.

机译:开发用于Bose-Einstein凝聚物中二维量子湍流实验研究的工具包。

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摘要

Bose-Einstein condensates (BECs), with their superfluid behavior, quantized vortices, and high-level of control over trap geometry and other system parameters provide a compelling environment for studies of quantum fluid dynamics. Recently there has been an influx of theoretical and numerical progress in understanding the superfluid dynamics associated with two-dimensional quantum turbulence, with expectations that complementary experiments will soon be realized. In this dissertation I present progress in the development of an experimental toolkit that will enable such experimental studies of two-dimensional quantum turbulence. My approach to developing this toolkit has been twofold: first, efforts aimed at the development of experimental techniques for generating large disordered vortex distributions within a BEC; and second, efforts directed towards the design, implementation, and characterization of a quantum vortex microscope.;Quantum turbulence in a superfluid is generally regarded as a disordered tangle of quantized vortices in three dimensions, or a disordered planar distribution of quantized vortices in two dimensions. However, not all vortex distributions, even large disordered ones, are expected to exhibit robust signatures of quantum turbulence. Identification and development of techniques for controlled forcing or initialization of turbulent vortex distributions is now underway. In this dissertation, I will discuss experimental techniques that were examined during the course of my dissertation research, namely generation of large disordered distributions of vortices, and progress towards injecting clusters of vortices into a BEC.;Complimentary to vortex generation is the need to image these vortex distributions. The nondeterministic nature of quantum turbulence and other far-from-equilibrium superfluid dynamics requires the development of new imaging techniques that allow one to obtain information about vortex dynamics from a single BEC. To this end, the first vortex microscope constructed as part of my dissertation research enabled the first in situ images of quantized vortices in a single-component BEC, obtained without prior expansion. I have further developed and characterized a second vortex microscope, which has enabled the acquisition of multiple in situ images of a lattice of vortex cores, as well as the acquisition of single in situ images of vortex cores in a BEC confined in a weak hybrid trap. In this dissertation, I will discuss the state-of-the-art of imaging vortices and other superfluid phenomena in the University of Arizona BEC lab, as indicated by the examined performance of the quantum vortex microscope.
机译:玻色-爱因斯坦凝聚物(BEC)具有超流体行为,量化涡流以及对阱几何形状和其他系统参数的高度控制,为量子流体动力学研究提供了令人信服的环境。最近,在理解与二维量子湍流有关的超流体动力学方面,涌入了理论和数值方面的进展,并期望很快将实现互补实验。在本文中,我介绍了实验工具包的开发进展,该工具包将使二维量子湍流的此类实验研究成为可能。我开发该工具包的方法有两个方面:首先,致力于开发用于在BEC内生成大的无序涡旋分布的实验技术的工作;超流体中的量子湍流通常被认为是三维三维涡流的无序缠结,或者是二维三维涡旋的无序平面分布,通常被认为是量子涡流显微镜的设计,实现和表征。 。但是,并不是所有的涡旋分布,甚至是大的无序分布,都有望表现出强大的量子湍流特征。湍流涡分布受控受控或初始化的技术的鉴定和开发目前正在进行中。在这篇论文中,我将讨论在我的论文研究过程中检验过的实验技术,即产生大的无序涡旋分布,以及向BEC中注入旋涡簇的进展。与成像无关的涡旋产生是必要的这些涡旋分布。量子湍流和其他远非平衡超流体动力学的不确定性要求开发新的成像技术,使人们能够从单个BEC获得有关涡旋动力学的信息。为此,作为我的论文研究的一部分而构造的第一台涡旋显微镜使得能够在未经事先扩展的情况下在单组分BEC中获得量化涡旋的第一张原位图像。我进一步开发并表征了第二台涡旋显微镜,该显微镜可以采集涡旋核晶格的多个原位图像,以及在受限于弱混合阱中的BEC中采集涡旋核的单幅原位图像。在本文中,我将讨论亚利桑那大学BEC实验室中成像旋涡和其他超流体现象的最新技术,这是由量子涡旋显微镜的性能测试所表明的。

著录项

  • 作者

    Wilson, Kali Elena.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Atomic physics.;Optics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 249 p.
  • 总页数 249
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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