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Transport properties of a Bose-Einstein condensate with tunable interactions in the presence of a disordered or single defect potential.

机译:在存在无序或单一缺陷电位的情况下,具有可调相互作用的玻色-爱因斯坦凝聚物的输运性质。

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摘要

Bose-Einstein condensates (BECs) have proven to be remarkable systems with which to study some of the foundational models of condensed matter physics. The observation of a critical velocity for the breakdown of superfluidity in a BEC and the superfluid to Mott insulator transition observed in a BEC trapped by an optical lattice are but two examples of the, by now, dozens of exciting results in this field, which combines theoretical tools from condensed matter physics with state-of-the-art experimental techniques from ultra-cold atomic physics. However, any real condensed matter system has to contend with the effects of disorder, a phenomena notably absent in the inherently clean BEC systems. We have developed and implemented a way to add well characterized disorder in a controlled way to the otherwise clean BEC system using the light field from a laser speckle pattern. Using this system, we have investigated the effects of disorder or a single Gaussian defect, on the collective dipole motion of a BEC of 7Li in an optical trap. In addition, we perform transport experiments on a weakly interacting BEC expanding in a disordered one-dimensional atom wave-guide. We have observed that in such a system, the wave nature of matter can lead to spectacular and counterintuitive phenomena. Specifically, we verify that this system exhibits Anderson localization, a phenomena fundamentally resulting from the interference of multiply scattered matter waves. In such a state, the localized gas behaves as an insulator in a regime where it is classically expected to be conducting.;We also present results of experiments regarding a repulsive BEC scattering from a semi-permeable, single defect potential. We investigate the transport properties of such a system with special emphasis on the velocity and defect strength dependent dissipation of the collective dipole motion of the BEC. Finally, we present the results of our experiments on the scattering properties of bright matter wave solitons. We have observed fragmentation of the soliton in a disordered potential as well as both splitting and recombination of a soliton after interacting with a single repulsive defect potential.
机译:玻色-爱因斯坦凝聚物(BEC)被证明是卓越的系统,可用于研究凝聚态物理的一些基础模型。观察BEC中的超流体击穿的临界速度以及在被光学晶格捕获的BEC中观察到的从超流体到Mott绝缘子的转变,只是目前该领域数十个令人兴奋的结果的两个例子,这些结果结合了凝聚态物理学的理论工具以及超冷原子物理学的最新实验技术。但是,任何实际的冷凝物系统都必须与无序的影响作斗争,这种现象在固有的清洁BEC系统中尤其不存在。我们已经开发并实施了一种方法,该方法可以使用来自激光散斑图案的光场,以可控的方式将特征良好的无序添加到原本干净的BEC系统中。使用该系统,我们研究了无序或单个高斯缺陷对光阱中7Li的BEC的集体偶极运动的影响。此外,我们对弱相互作用的BEC在无序的一维原子波导中扩展进行了传输实验。我们已经观察到,在这样的系统中,物质的波动本质会导致壮观和违反直觉的现象。具体而言,我们验证了该系统具有Anderson局域性,该现象从根本上是由多重散射物质波的干扰引起的。在这种状态下,局部气体在传统上预期会传导的状态下充当绝缘体。我们还提供了有关从半渗透性单缺陷电势进行排斥BEC散射的实验结果。我们研究了这种系统的传输特性,特别着重于BEC集体偶极运动的速度和缺陷强度相关的耗散。最后,我们介绍了关于亮物质波孤子的散射特性的实验结果。我们已经观察到孤子在无序电势中的破碎,以及与单个排斥缺陷电势相互作用后孤子的分裂和重组。

著录项

  • 作者

    Dries, Daniel Franklin.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Physics Low Temperature.;Physics Optics.;Physics Atomic.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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