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首页> 外文期刊>Journal of Physics, B. Atomic, Molecular and Optical Physics: An Institute of Physics Journal >Simulating quantum transport for a quasi-one-dimensional Bose gas in an optical lattice: The choice of fluctuation modes in the truncated Wigner approximation
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Simulating quantum transport for a quasi-one-dimensional Bose gas in an optical lattice: The choice of fluctuation modes in the truncated Wigner approximation

机译:在光学晶格中模拟准一维玻色气体的量子输运:截断维格纳近似中波动模式的选择

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摘要

We study the effect of quantum fluctuations on the dynamics of a quasi-one-dimensional Bose gas in an optical lattice at zero temperature using the truncated Wigner approximation with a variety of basis sets for the initial fluctuation modes. The initial spatial distributions of the quantum fluctuations are very different when using a limited number of plane-wave (PW), simple-harmonic-oscillator (SHO) and self-consistently determined Bogoliubov (SCB) modes. The short-time transport properties of the Bose gas, characterized by the phase coherence in the PW basis, are distinct from those gained using the SHO and SCB basis. The calculations using the SCB modes predict greater phase decoherence and stronger number fluctuations than the other choices. Furthermore, we observe that the use of PW modes overestimates the extent to which atoms are expelled from the core of the cloud, while the use of the other modes only breaks the cloud structure slightly, which is in agreement with the experimental observations by Fertig et al (2005 Phys. Rev. Lett. 94 120403).
机译:我们使用截断的Wigner逼近和各种初始波动模式的基础集,研究了零度波动对零温度下光学晶格中准一维Bose气体动力学的影响。当使用有限数量的平面波(PW),简单谐波振荡器(SHO)和自洽确定的Bogoliubov(SCB)模式时,量子涨落的初始空间分布非常不同。以PW为基础的相干性为特征的Bose气体的短时传输特性与使用SHO和SCB所获得的特性不同。与其他选择相比,使用SCB模式进行的计算预测出更大的相位退相干和更强的数量波动。此外,我们发现使用PW模式高估了原子从云核心被驱逐的程度,而使用其他模式仅会稍微破坏云结构,这与Fertig等人的实验观察一致等(2005 Phys.Rev.Lett.94 120403)。

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