论文标题

通过挤压真空对黑量子二聚体的耗散稳定

Dissipative stabilization of dark quantum dimers via squeezed vacuum

论文作者

Gutiérrez-Jáuregui, R., Asenjo-Garcia, A., Agarwal, G. S.

论文摘要

了解开放量子系统与环境交换信息的机制对于量子状态的创造和稳定至关重要。最近探索了该主题,主要关注系统控制或环境工程。在这里,我们将这些想法汇集在一起​​,描述一个延伸的原子阵列的多体动力学,并结合了挤压真空。我们表明,波动可以将阵列驱动到与环境脱钩的纯黑色状态。对于偶数原子的黑暗状态,由最大纠缠的原子对或二聚体组成,这些原子对模仿了挤压场的行为。每对均显示一个极化正交中的波动减少,并在另一个极化中放大。这种耗散引起的稳定依赖于光子对和原子对之间相关性的有效传递。它揭示了挤压光导致原子阵列进行自组织的机制,并说明了在现代量子技术中空间相关性的重要性,在现代量子技术中,多体效应起着核心作用。

Understanding the mechanism through which an open quantum system exchanges information with an environment is central to the creation and stabilization of quantum states. This theme has been explored recently, with attention mostly focused on system control or environment engineering. Here, we bring these ideas together to describe the many-body dynamics of an extended atomic array coupled to a squeezed vacuum. We show that fluctuations can drive the array into a pure dark state decoupled from the environment. The dark state is obtained for an even number of atoms and consists of maximally entangled atomic pairs, or dimers, that mimic the behavior of the squeezed field. Each pair displays reduced fluctuations in one polarization quadrature and amplified in another. This dissipation-induced stabilization relies on an efficient transfer of correlations between pairs of photons and atoms. It uncovers the mechanism through which squeezed light causes an atomic array to self-organize and illustrates the increasing importance of spatial correlations in modern quantum technologies where many-body effects play a central role.

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