论文标题
通过调制光学机械增强重力纠缠
Enhanced Gravitational Entanglement via Modulated Optomechanics
论文作者
论文摘要
在过去的几年中,纠缠在确定给定相互作用的非古典性中的作用已获得了显着的关注。特别是,作为测试重力场量子性质的新实验建议的基础。在这里,我们表明,通过调节光学机械耦合,可以显着增加两个原本孤立的光机电系统之间的重力介导速率。这对于低质量,高频系统最为明显 - 方便地达到量子状态 - 可以改善几个数量级,并扩大了测量窗口。然而,仍然存在重大障碍。特别是,我们发现调制以与纠缠改善相同的速度增加了破坏性效应。这增加了越来越多的证据表明,对噪声的约束(作用于D.O.F位置)仅取决于环境的粒子质量,分离和温度,并且无法通过新型的量子控制来改善。最后,我们强调了量子相关性的观察与通过Cramér-Rao结合得出的测量精度的限制之间的密切联系。直接的结果是,探测引力场的叠加对检测器敏感性的要求与纠缠验证相似。
The role of entanglement in determining the non-classicality of a given interaction has gained significant traction over the last few years. In particular, as the basis for new experimental proposals to test the quantum nature of the gravitational field. Here we show that the rate of gravity mediated entanglement between two otherwise isolated optomechanical systems can be significantly increased by modulating the optomechanical coupling. This is most pronounced for low mass, high frequency systems - convenient for reaching the quantum regime - and can lead to improvements of several orders of magnitude, as well as a broadening of the measurement window. Nevertheless, significant obstacles still remain. In particular, we find that modulations increase decoherence effects at the same rate as the entanglement improvements. This adds to the growing evidence that the constraint on noise (acting on the position d.o.f) depends only on the particle mass, separation, and temperature of the environment and cannot be improved by novel quantum control. Finally, we highlight the close connection between the observation of quantum correlations and the limits of measurement precision derived via the Cramér-Rao Bound. An immediate consequence is that probing superpositions of the gravitational field places similar demands on detector sensitivity as entanglement verification.