Jin Zhao, Su Shi-Lei, Zhu Ai-Dong, Wang Hong-Fu, Zhang Shou
Opt Express. 2017 Jan 9;25(1):88-101. doi: 10.1364/OE.25.000088.
We propose a nonlocal scheme for preparing a distributed steady-state entanglement of two atoms trapped in separate optical cavities coupled through an optical fiber based on the combined effect of the unitary dynamics and dissipative process. In this scheme, only the qubit of one node is driven by an external classical field, while the other one does not need to be manipulated by an external field. This is meaningful for long distance quantum information processing tasks, and the experimental implementation is greatly simplified due to the unilateral manipulation on one node and the process of entanglement distribution can be avoided. This guarantees the absolute security of long distance quantum information processing tasks and makes the scheme more robust than that based on the unitary dynamics. We introduce the purity to characterize the mixture degree of the target steady-state. The steady entanglement can be obtained independent of the initial state. Furthermore, based on the dissipative entanglement preparation scheme, we construct a quantum teleportation setup with multiple nodes as a practical application, and the numerical simulation demonstrates the scheme can be realized effectively under the current experimental conditions..
我们提出了一种非局域方案,用于基于幺正动力学和耗散过程的联合效应,制备通过光纤耦合的分别囚禁在独立光学腔中的两个原子的分布式稳态纠缠。在该方案中,仅一个节点的量子比特由外部经典场驱动,而另一个节点无需外部场的操控。这对于长距离量子信息处理任务具有重要意义,并且由于对一个节点的单边操控极大地简化了实验实现,还可避免纠缠分布过程。这保证了长距离量子信息处理任务的绝对安全性,并且使该方案比基于幺正动力学的方案更稳健。我们引入纯度来表征目标稳态的混合程度。稳态纠缠可独立于初始状态获得。此外,基于耗散纠缠制备方案,我们构建了一个具有多个节点的量子隐形传态装置作为实际应用,数值模拟表明该方案在当前实验条件下可有效实现。