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Engineered potentials in ultracold Bose-Einstein condensates.

机译:Bose-Einstein超冷冷凝物的工程潜力。

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摘要

Bose-Einstein condensates (BECs) are a recent addition to the portfolio of quantum materials some of which have profound commercial and military applications e.g., superconductors, superfluids and light emitting diodes. BECs exist in the lowest motional modes of a trap and have the lowest temperatures achieved by mankind. With full control over the shape of the trap the experimentalist may explore an extremely diverse set of Hamiltonians which may be altered mid-experiment. These properties are particularly suited for realizing novel quantum systems.;This thesis explores interaction-driven domain formation and the subsequent domain coarsening for two immiscible BEC components. Because quantum coherences associated with interactions in BECs can be derived from low energy scattering theory we compare our experimental results to both a careful simulation (performed by Brandon Anderson) and an analytical prediction. This result very carefully explores the question of how a metastable system relaxes at the extreme limit of low temperature.;We also explore spin-orbit coupling (SOC) of a BEC which links the linear and discrete momentum transferable by two counterpropagating ''Raman'' lasers that resonantly couple the ground electronic states of our BECs. SOC is used similarly in condensed matter systems to describe coupling between charge carrier spin and crystal momentum and is a necessary component of the quantum spin Hall effect and topological insulators.;SOC links the linear and discrete momentum transferable by two counterpropagating ''Raman'' lasers and a subset of the ground electronic states of our BEC. The phases of an effective 2-spin component spin-orbit coupling (SOC) in a spin-1 BEC are described in Lin et al. (2011). We measure the phase transition between two phases of a spin-1 BEC with SOC which cannot be mimicked by a spin-1/2 system. The order parameter that describes transitions between these two phases is insensitive to magnetic field fluctuations.;I also describe a realistic implementation of Rashba SOC. This type of SOC is expected to exhibit novel many-body phases [Stanescu et al. 2008, Sedrakyan et al. 2012, Hu et al. 2011].
机译:玻色-爱因斯坦凝聚物(BECs)是量子材料产品组合中的最新成员,其中一些具有深远的商业和军事应用,例如超导体,超流体和发光二极管。 BEC存在于陷阱的最低运动模式中,并且具有人类所能达到的最低温度。通过完全控制疏水阀的形状,实验者可以探索极其多样化的哈密顿量,这些哈密顿量可以在实验中期改变。这些性质特别适合于实现新的量子系统。本论文探讨了相互作用驱动的畴形成以及随后两个不相溶的BEC组分的畴粗化。由于与BEC中相互作用有关的量子相干性可以从低能散射理论中得出,因此我们将实验结果与仔细的模拟(由Brandon Anderson进行)和分析预测进行了比较。该结果非常仔细地探讨了亚稳态系统在低温极限下如何松弛的问题。;我们还探索了BEC的自旋轨道耦合(SOC),该耦合将线性和离散动量通过两个反向传播的``拉曼''传递共振耦合我们BEC的接地电子状态的激光器。 SOC在凝聚态系统中的用法类似,用于描述载流子自旋与晶体动量之间的耦合,是量子自旋霍尔效应和拓扑绝缘体的必要组成部分; SOC链接可通过两个反向传播的``拉曼''传递的线性和离散动量。激光和我们BEC的地面电子状态的子集。 Lin et al。中描述了spin-1 BEC中有效的2自旋分量自旋轨道耦合(SOC)的相位。 (2011)。我们用spin-1 / 2系统无法模拟的SOC测量spin-1 BEC的两个相之间的相变。描述这两个相之间过渡的阶数参数对磁场波动不敏感。我还描述了Rashba SOC的实际实现。预计这种类型的SOC会表现出新颖的多体相[Stanescu等。 2008年,Sedrakyan等。 2012,胡等。 2011]。

著录项

  • 作者

    Campbell, Daniel L.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Quantum physics.;Physics.;Atomic physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 218 p.
  • 总页数 218
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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