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Centre-of-mass motion-induced decoherence and entanglement generation in a hybrid quantum repeater

机译:混合量子中继器中质心运动引起的退相干和纠缠生成

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Quantum communication over long distances relies on the ability to create entanglement between two remote quantum nodes. Recent proposals aiming at experimental realization propose a hybrid quantum repeater setup where two distant material qubits are entangled by light-matter interaction. Motivated by these developments, we investigate possible decoherence effects originating from the centre-of-mass motion of the spatially well-separated trapped qubits. Within the Lamb-Dicke regime we use photon exchange involving coherent states of the radiation field to entangle the two material qubits. Optimal generalized photonic field measurements are used to achieve entangled qubit pairs with high fidelities and high success probabilities. We demonstrate that the quality of the achievable two-qubit entanglement crucially depends on the trap frequencies involved. Furthermore, dynamical decoupling schemes are proposed which are capable of suppressing centre-of-mass motion-induced decoherence effects significantly and which involve only local operations acting on the spatially well-separated material qubits.
机译:长距离的量子通信依赖于在两个远程量子节点之间产生纠缠的能力。针对实验实现的最新提议提出了一种混合量子中继器设置,其中两个遥远的物质量子位通过光-质相互作用而纠缠在一起。受这些发展的激励,我们研究了空间上分离良好的捕获量子位的质心运动可能引起的退相干效应。在Lamb-Dicke体制内,我们使用涉及辐射场相干态的光子交换来纠缠两个物质量子位。最佳广义光子场测量用于获得高保真度和高成功概率的纠缠量子比特对。我们证明,可实现的两个量子位纠缠的质量关键取决于所涉及的陷波频率。此外,提出了动态去耦方案,该方案能够显着抑制质心运动引起的去相干效应,并且仅涉及作用于空间上分离良好的材料量子位的局部运算。

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