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Superfluids of Fermions in spin-orbit coupled systems and photons inside a cavity.

机译:自旋轨道耦合系统中费米子的超流体以及腔体内的光子。

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摘要

This dissertation introduces some new properties of both superfluid phases of fermions with spin-orbit coupling (SOC) and superradiant phases of photons in an optical cavity. The effects of SOC on the phase transition between normal and superfluid phase are revealed; an unconventional crossover driven by SOC from the Bardeen-Cooper-Schrieffer (BCS) state to the Bose-Einstein condensate (BEC) state is verified in three different systems; and two kinds of excitations, a Goldstone mode and a Higgs mode, are demonstrated to occur in a quantum optical system.;We investigate the BCS superfluid state of two-component atomic Fermi gases in the presence of three kinds of SOCs. We find that SOC drives a class of BCS to BEC crossover that is different from the conventional one without SOC. Here, we extend the concepts of the coherence length and Cooper-pair size in the absence of SOC to Fermi systems with SOC. We study the dependence of chemical potential, coherence length, and Cooper-pair size on the SOC strength and the scattering length in three dimensions (3D) (or the two-body binding energy in two dimensions (2D)) for three attractively interacting Fermi gases with 3D Rashba, 3D Weyl, and 2D Rashba SOC respectively.;By adding a population imbalance to a Fermi gas with Rashba-type SOC, we also map out the finite-temperature phase diagram. Due to a competition between SOC and population imbalance, the finite-temperature phase diagram reveals a large variety of new features, including the expanding of the superfluid state regime and the shrinking of both the phase separation and the normal regimes. We find that the tricritical point moves toward a regime of low temperature, high magnetic field, and high polarization as the SOC strength increases.;Besides Fermi fluids, this dissertation also gives a new angle of view on the superradiant phase in the Dicke model. Here, we demonstrate that Goldstone and Higgs modes can be observed in an optical system with only a few atoms inside a cavity. The model we study is the U(1)/Z 2 Dicke model with N qubits (two-level atoms) coupled to a single photon mode.
机译:本文介绍了具有自旋轨道耦合(SOC)的费米子超流体相和光腔中光子的超辐射相的一些新性质。揭示了SOC对正相和超流相之间相变的影响;在三个不同的系统中,验证了由SOC驱动的从Bardeen-Cooper-Schrieffer(BCS)状态到Bose-Einstein冷凝物(BEC)状态的非常规交叉;并证明了在量子光学系统中发生了两种激发,分别是戈德斯通模式和希格斯模式。我们研究了在三种SOC存在下两组分原子费米气体的BCS超流态。我们发现,SOC驱动了一类BCS到BEC的交叉,这与没有SOC的传统方法不同。在这里,我们将没有SOC时的相干长度和Cooper对大小的概念扩展到具有SOC的费米系统。我们研究了三个有吸引力的相互作用费米的化学势,相干长度和库珀对大小对SOC强度和散射长度的三维(3D)(或二维二维物体结合能(2D))的依赖性。分别使用3D Rashba,3D Weyl和2D Rashba SOC气体;通过向具有Rashba型SOC的费米气体中增加族群不平衡,我们还绘制了有限温度相图。由于SOC和总体失衡之间的竞争,有限温度相图揭示了许多新特征,包括超流体状态机制的扩展以及相分离和正常态的收缩。我们发现随着SOC强度的增加,三临界点逐渐趋向于低温,高磁场和高极化状态。除费米流体外,本文还为Dicke模型中的超辐射相提供了新的视角。在这里,我们证明了在一个只有几个原子的腔体内的光学系统中可以观察到Goldstone和Higgs模。我们研究的模型是U(1)/ Z 2 Dicke模型,其中N个量子位(两级原子)耦合到一个光子模式。

著录项

  • 作者

    Yu, Yi-Xiang.;

  • 作者单位

    Mississippi State University.;

  • 授予单位 Mississippi State University.;
  • 学科 Physics.;Engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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