量子气体动力学中的共形对称性特征:循环量子态与纠缠熵

IF 2.9 2区 物理与天体物理 Q2 Physics and Astronomy Physical Review A Pub Date : 2024-08-12 DOI:10.1103/physreva.110.023312
Jeff Maki, Fei Zhou
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引用次数: 0

摘要

共形对称性在很大程度上限制了非相对论量子气体调谐到附近量子临界点的动力学。这种对称性的一个重要结果是,在置于可调谐波捕获势内的强相互作用三维和一维量子气体的远离平衡动力学中,可能不产生熵。这可能导致一种振荡的完全可逆多体动力学状态,并反映在许多物理观测指标中。在本文中,我们将进一步研究共形对称性对(a)零温自相关函数、(b)维格纳分布函数和(c)冯-诺依曼纠缠熵的影响。对于一般的强相互作用系统,直接计算这些量通常极其困难。然而,当这些函数的动力学受到共形对称性的约束时,我们推导出了它们在非平衡动力学中的一般结构。我们利用算子-状态对应关系获得了(a)项的结果,该对应关系将主算子的虚时间演化与谐波陷落气体的不同初始状态联系起来,而(b)和(c)项函数的动力学则是通过保角不变密度矩阵推导出来的。
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Signatures of conformal symmetry in the dynamics of quantum gases: A cyclic quantum state and entanglement entropy
Conformal symmetry heavily constrains the dynamics of nonrelativistic quantum gases tuned to a nearby quantum critical point. One important consequence of this symmetry is that entropy production can be absent in far-away-from-equilibrium dynamics of strongly interacting three-dimensional (3D) and one-dimensional (1D) quantum gases placed inside an adjustable harmonic trapping potential. This can lead to an oscillatory fully revivable many-body dynamic state, which is reflected in many physical observables. In this article we further investigate the consequences of conformal symmetry on (a) the zero-temperature autocorrelation function, (b) the Wigner distribution function, and (c) the von Neumann entanglement entropy. A direct calculation of these quantities for generic strongly interacting systems is usually extremely difficult. However, we have derived the general structures of these functions in the nonequilibrium dynamics when their dynamics are constrained by conformal symmetry. We obtain our results for (a) by utilizing an operator-state correspondence which connects the imaginary time evolution of primary operators to different initial states of harmonically trapped gases, while the dynamics of the functions in (b) and (c) are derived from conformal invariant density matrices.
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来源期刊
Physical Review A
Physical Review A 物理-光学
CiteScore
5.40
自引率
24.10%
发文量
0
审稿时长
2.2 months
期刊介绍: Physical Review A (PRA) publishes important developments in the rapidly evolving areas of atomic, molecular, and optical (AMO) physics, quantum information, and related fundamental concepts. PRA covers atomic, molecular, and optical physics, foundations of quantum mechanics, and quantum information, including: -Fundamental concepts -Quantum information -Atomic and molecular structure and dynamics; high-precision measurement -Atomic and molecular collisions and interactions -Atomic and molecular processes in external fields, including interactions with strong fields and short pulses -Matter waves and collective properties of cold atoms and molecules -Quantum optics, physics of lasers, nonlinear optics, and classical optics
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