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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Geometric scale invariance as a route to macroscopic degeneracy: Loading a toroidal trap with a Bose or Fermi gas
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Geometric scale invariance as a route to macroscopic degeneracy: Loading a toroidal trap with a Bose or Fermi gas

机译:几何尺度不变性作为宏观退化的途径:用Bose或Fermi气体加载环形阱

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摘要

An easily scalable toroidal geometry presents an opportunity for creating large-scale persistent currents in Bose-Einstein condensates, for studies of the Kibble-Zurek mechanism, and for investigations of toroidally trapped degenerate Fermi gases. We consider in detail the process of isentropic loading of a Bose or Fermi gas from a harmonic trap into the scale-invariant toroidal regime that exhibits a high degree of system invariance when increasing the radius of the toroid. The heating involved in loading a Bose gas is evaluated analytically and numerically, both above and below the critical temperature. Our numerical calculations treat interactions within the Hartree-Fock-Bogoliubov-Popov theory. Minimal change in degeneracy is observed over a wide range of initial temperatures, and a regime of cooling is identified. The scale-invariant property is further investigated analytically by studying the density of states of the system, revealing the robust nature of scale invariance in this trap, for both bosons and fermions. We give analytical results for a Thomas-Fermi treatment. We calculate the heating due to loading a spin-polarized Fermi gas and compare with analytical results for higharid low-temperature regimes. The Fermi gas is subjected to irreducible heating during loading, caused by the loss of one degree of freedom for thermalization.
机译:易于扩展的环形几何形状为在玻色-爱因斯坦凝聚物中产生大规模持续电流,研究Kibble-Zurek机理以及研究环形捕获的简并费米气体提供了机会。我们将详细考虑将Bose或Fermi气体的等熵加载过程从谐波阱捕获到尺度不变的环形状态中,当增大环形半径时,该状态显示出高度的系统不变性。在临界温度之上和之下,都通过分析和数字方式评估了加载玻色气体所涉及的加热。我们的数值计算处理了Hartree-Fock-Bogoliubov-Popov理论中的相互作用。在很宽的初始温度范围内观察到的简并性变化很小,并且确定了冷却方式。通过研究系统状态的密度,进一步对尺度不变性质进行了分析研究,揭示了该陷阱对玻色子和费米子的尺度不变的鲁棒性。我们给出了Thomas-Fermi治疗的分析结果。我们计算了由于加载了自旋极化费米气体而产生的热量,并与高低温条件下的分析结果进行了比较。费米气体在加载过程中受到不可还原的加热,这是由于失去了一个热化自由度所致。

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