论文标题

双巨型元素QUD-QED系统中的非马克维亚分解动力学

Non-Markovian disentanglement dynamics in double-giant-atom waveguide-QED systems

论文作者

Yin, Xian-Li, Luo, Wen-Bin, Liao, Jie-Qiao

论文摘要

我们研究了两个巨型原子的分离动力学,并耦合到一个常见的一维波指导。我们专注于通过考虑光子传输时间来解开两个巨型原子的非马克维亚智障效应。通过求解概率幅度的时间删除运动方程,我们获得了两个巨型原子的纠缠的演变,这些原子最初位于单个兴奋空间中的最大纠缠状态。 It is found that the retardation-induced non-Markovianity leads to non-exponential decay and revivals of entanglement.具体而言,我们考虑了单独的,编织和嵌套的耦合配置,并发现这些配置中的分离动力学表现出不同的功能。我们证明,稳态纠缠取决于这三个耦合配置中某些条件下的时间延迟。我们还研究了两个巨型原子对失呼效应和初始状态效应的依赖性。此外,我们考虑了两个巨大原子的分离动力学,最初是在零兴奋和两种兴奋的成分中超级普遍的状态中。这项工作将为两个巨大原子之间的固定纠缠铺平道路,这可能在建造基于巨型Wavepuide-QED系统的大规模量子网络中具有潜在的应用。

We study the disentanglement dynamics of two giant atoms coupled to a common one-dimensional waveguide. We focus on the non-Markovian retarded effect in the disentanglement of the two giant atoms by taking the photon transmission time into account. By solving the time-delayed equations of motion for the probability amplitudes, we obtain the evolution of the entanglement of the two giant atoms, which are initially in the maximally entangled states in the single-excitation space. It is found that the retardation-induced non-Markovianity leads to non-exponential decay and revivals of entanglement. Concretely, we consider separate-, braided-, and nested-coupling configurations, and find that the disentanglement dynamics in these configurations exhibits different features. We demonstrate that the steady-state entanglement depends on the time delay under certain conditions in these three coupling configurations. We also study the dependence of the disentanglement of the two giant atoms on both the detuning effect and the initial-state phase effect. In addition, we consider the disentanglement dynamics of the two giant atoms, which are initially in the state superposed by zero-excitation and two-excitation components. This work will pave the way for the generation of stationary entanglement between two giant atoms, which may have potential applications in the construction of large-scale quantum networks based on the giant-atom waveguide-QED systems.

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