论文标题

通过一般暗模控制

Thermal-noise-resistant optomechanical entanglement via general dark-mode control

论文作者

Huang, Jian, Lai, Deng-Gao, Liao, Jie-Qiao

论文摘要

量子纠缠不仅在量子理论的基础知识的研究中起着重要作用,而且也被认为是量子信息科学中的重要资源。涉及多种光学和机械模式的宏观纠缠的产生是腔光力学中所需的任务。然而,暗模式效应是与多模光学系统中量子纠缠产生的关键障碍,该系统由多个退化或接近分级的机械模式组成,并耦合到公共腔模式。在这里,我们提出了一种辅助式腔模式方法,以通过破坏暗模式效应来增强多模型光学系统中的光学机械纠缠。我们发现,辅助腔模式的引入不仅有助于腔模式与机械模式之间的纠缠创造,而且还可以提高光学机械纠缠对热激发的免疫力,大约三个数量级。我们还研究了由两种机械模式和两种腔模式组成的网络耦合的光力学系统中的光力纠缠。通过分析光学机械纠缠与暗模式效应之间的对应关系,我们发现一旦破坏了暗模式,光机电纠缠就可以大大增强。此外,我们研究了机械纠缠,并发现它忽略不计。我们还提出了一些有关实验实现的讨论,并通过微波光学机械设置,关于暗模式的机制与质量中心和相对坐标之间的关系,以及解释暗模式破裂在增强光学机械串联增强中的重要作用。我们的结果为准备纠缠的光力学网络和耐噪声量子资源的准备铺平了道路。

Quantum entanglement not only plays an important role in the study of the fundamentals of quantum theory, but also is considered as a crucial resource in quantum information science. The generation of macroscopic entanglement involving multiple optical and mechanical modes is a desired task in cavity optomechanics. However, the dark-mode effect is a critical obstacle against the generation of quantum entanglement in multimode optomechanical systems consisting of multiple degenerate or near-degenerate mechanical modes coupled to a common cavity mode. Here we propose an auxiliary-cavity-mode method to enhance optomechanical entanglement in a multimode optomechanical system by breaking the dark-mode effect. We find that the introduction of the auxiliary cavity mode not only assists the entanglement creation between the cavity mode and the mechanical modes, but also improves the immunity of the optomechanical entanglement to the thermal excitations by about three orders of magnitude. We also study the optomechanical entanglement in the network-coupled optomechanical system consisting of two mechanical modes and two cavity modes. By analyzing the correspondence between the optomechanical entanglement and the dark-mode effect, we find that optomechanical entanglement can be largely enhanced once the dark mode is broken. In addition, we study the mechanical entanglement and find that it is negligibly small. We also present some discussions on the experimental implementation with a microwave optomechanical setup, on the relationship between the dark-mode-breaking mechanism and the center-of-mass and relative coordinates, and on the explanation of the important role of the dark-mode breaking in the enhancement of optomechanical entanglement. Our results pave the way towards the preparation of entangled optomechanical networks and noise-resistant quantum resources.

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