理想量子气体中的量子退化和自旋纠缠

IF 1.5 4区 物理与天体物理 Q3 OPTICS
Fatma Zouari Ahmed, Mohammed Tayeb Meftah, Tommaso Roscilde
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引用次数: 0

摘要

量子退化是源于量子力学的理想量子气体的核心多体特征。在这项研究中,我们探讨了它与多体系统中最基本的非经典性形式,即多体纠缠的关系。我们旨在利用基于自旋集合集体自旋方差的纠缠见证标准,建立自旋理想气体中量子退化与纠缠之间的定量联系。我们的研究表明,自旋-1/2 理想玻色气体并不具有纠缠,而这种纠缠标准可以揭示出这种纠缠。相反,理想的自旋-1/2 费米气体在进入量子退变性后,由于形成了高度非局域自旋单子,其集体自旋方差揭示了自旋纠缠。我们描绘了费米气体在自由空间和抛物线陷阱中可探测到的自旋纠缠机制,并探究了自旋纠缠对热效应和自旋不平衡的稳健性。利用超冷原子中最先进的自旋探测技术,可以对退化费米气体中的自旋纠缠进行实验观测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantum degeneracy and spin entanglement in ideal quantum gases
Quantum degeneracy is the central many-body feature of ideal quantum gases stemming from quantum mechanics. In this work we address its relationship to the most fundamental form of non-classicality in many-body system, i.e. many-body entanglement. We aim at establishing a quantitative link between quantum degeneracy and entanglement in spinful ideal gases, using entanglement witness criteria based on the variance of the collective spin of the spin ensemble. We show that spin-1/2 ideal Bose gases do not possess entanglement which can be revealed from such entanglement criteria. On the contrary, ideal spin-1/2 Fermi gases exhibit spin entanglement revealed by the collective-spin variances upon entering quantum degeneracy, due to the formation of highly non-local spin singlets. We map out the regime of detectable spin entanglement for Fermi gases in free space as well as in a parabolic trap, and probe the robustness of spin entanglement to thermal effects and spin imbalance. Spin entanglement in degenerate Fermi gases is amenable to experimental observation using state-of-the-art spin detection techniques in ultracold atoms.
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来源期刊
CiteScore
3.60
自引率
6.20%
发文量
182
审稿时长
2.8 months
期刊介绍: Published twice-monthly (24 issues per year), Journal of Physics B: Atomic, Molecular and Optical Physics covers the study of atoms, ions, molecules and clusters, and their structure and interactions with particles, photons or fields. The journal also publishes articles dealing with those aspects of spectroscopy, quantum optics and non-linear optics, laser physics, astrophysics, plasma physics, chemical physics, optical cooling and trapping and other investigations where the objects of study are the elementary atomic, ionic or molecular properties of processes.
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