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Formation, Dynamics, and Decay of Quantized Vortices in Bose-Einstein Condensates: Elements of Quantum Turbulence

机译:玻色-爱因斯坦凝聚物中涡旋的形成,动力学和衰减:量子湍流元素

摘要

Turbulence in classical fluids has been the subject of scientific study for centuries, yet there is still no complete general theory of classical turbulence connecting microscopic physics to macroscopic fluid flows, and this remains one of the open problems in physics. In contrast, the phenomenon of quantum turbulence in superfluids has well-defined theoretical descriptions, based on first principles and microscopic physics, and represents a realm of physics that can connect the classical and quantum worlds. Studies of quantum turbulence may thus be viewed as a path for progress on the long-standing problem of turbulence.A dilute-gas Bose-Einstein condensate (BEC) is, in most cases, a superfluid that supports quantized vortices, the primary structural elements of quantum turbulence. BECs are particularly convenient systems for the study of vortices, as standard techniques allow the microscopic structure and dynamics of the vortices to be investigated. Vortices in BECs can be created and manipulated using a variety of techniques, hence BECs are potentially powerful systems for the microscopic study of quantum turbulence.This dissertation focuses on quantized vortices in BECs, specifically experimental and numerical studies of their formation, dynamics, and decay, in an effort to understand the microscopic nature of vortices as elements of quantum turbulence. Four main experiments were performed, and are described in the main chapters of this dissertation, after introductions to vortices, experimental methods, and turbulence are presented. These experiments were aimed at understanding various aspects of how vortices are created and behave in a superfluid system. They involved vortex dipole nucleation in the breakdown of superfluidity, persistent current generation from a turbulent state in the presence of energy dissipation, decay of angular momentum of a BEC due to trapping potential impurities, and exploration of the spontaneous formation of vortices during the BEC phase transition. These experiments represent progress towards enhanced understanding of the formation, dynamics, and decay of vortices in BECs and thus may be foundational to more general studies of quantum turbulence in superfluids.
机译:几个世纪以来,经典流体中的湍流一直是科学研究的主题,但是仍然没有完整的经典湍流通用理论将微观物理学与宏观流体流动联系起来,这仍然是物理学中的未解决问题之一。相比之下,超流体中的量子湍流现象具有基于第一原理和微观物理学的明确定义的理论描述,代表了可以连接经典世界和量子世界的物理学领域。因此,对量子湍流的研究可能被视为解决长期湍流问题的途径。在大多数情况下,稀薄气体Bose-Einstein冷凝物(BEC)是一种超流体,它支持定量涡旋(主要的结构元素)湍流BEC是用于涡旋研究的特别方便的系统,因为标准技术允许研究涡旋的微观结构和动力学。 BEC中的涡流可以使用多种技术来创建和操纵,因此BEC是潜在的强大系统,可用于微观研究量子湍流。本文着重研究BEC中的量化涡流,特别是关于其形成,动力学和衰减的实验和数值研究。为了理解作为量子湍流要素的涡旋的微观性质。在介绍了旋涡,实验方法和湍流之后,进行了四个主要实验,并在本论文的主要章节中进行了介绍。这些实验旨在了解涡流在超流体系统中的产生方式和行为的各个方面。他们涉及涡流偶极子成核,超流体的破坏,在存在能量耗散的情况下从湍流状态持续产生电流,由于捕获潜在杂质而导致BEC角动量衰减以及探索BEC阶段中涡旋的自发形成过渡。这些实验代表了人们对BEC中涡旋的形成,动力学和衰减的进一步理解的进步,因此可能是超流体中量子湍流的更一般研究的基础。

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    Neely Tyler William;

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  • 年度 2010
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  • 正文语种 en
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