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Quantum repeater protocol using an arrangement of QED-optomechanical hybrid systems

机译:Quantum Repeater协议使用QED-Optimeche混合系统的布置

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In this paper, we consider the quantum repeater protocol for distributing the entanglement to two distant three-level atoms. In this protocol, we insert six atoms between two target atoms, such that the eight considered atoms are labeled by 1, 2,...8, while only each two adjacent atoms (i, i + 1) with i = 1, 3, 5, 7 are entangled. Initially, the separable atomic pair states (1,4) and (5,8) become entangled by performing interaction between atoms (2,3) and (6,7) in two optomechanical cavities, respectively. Then, via performing appropriate interaction between atoms (4,5) in an optical cavity quantum electrodynamics approach, the target atoms (1,8) finally become entangled. Throughout this investigation, the effects of mechanical frequency and optomechanical coupling strength to the field modes on the produced entanglement and the related success probability are evaluated. It is shown that the time period of produced entanglement can be developed by increasing the mechanical frequency. Also, the maximum of the success probability of atoms (1,8) is increased by decreasing the optomechanical coupling strength to the field modes in most cases. (C) 2019 Optical Society of America
机译:在本文中,我们考虑将缠结分配到两个远程三级原子的量子中继器协议。在该方案中,我们在两个靶原子之间插入六个原子,使得八个被认为是由1,2,... 8标记的原子,而只有每个两个相邻的原子(I,I + 1),具有i = 1,3 ,5,7纠缠在一起。最初,可分离原子对状态(1,4)和(5,8)通过分别在两个光学力学腔中进行原子(2,3)和(6,7)之间的相互作用而变得缠结。然后,通过在光学腔量子电动力学方法中进行原子(4,5)之间的适当相互作用,目标原子(1,8)最终变得缠结。在综述各种研究中,评估了机械频率和光学机械耦合强度对产生的缠结的现场模式和相关成功概率的影响。结果表明,可以通过增加机械频率来开发产生的缠结的时间段。而且,通过在大多数情况下通过将光学机械耦合强度降低到现场模式的最大值来增加原子的成功概率(1,8)。 (c)2019年光学学会

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