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Optically controlled phase gate and teleportation of a controlled-not gate for spin qubits in a quantum-dot-microcavity coupled system

机译:量子点-微腔耦合系统中自旋量子位的光控相位门和非受控门的隐形传态

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摘要

Using linear optical manipulation, single photons, entangled photon pairs, photon measurement, and classical communication, we propose a scheme for a two-spin-qubit phase gate and the teleportation of a controlled-not gate between two electron spins from acting on local qubits to acting on remote qubits using quantum dots in optical microcavities. The scheme is based on spin selective photon reflection from the cavity and is achieved in a deterministic way by the sequential detection of photons and the single-qubit rotations of a single electron spin in a self-assembled GaAs-InAs quantum dot. The feasibility of the scheme is assessed showing that high average fidelities of the gates are achievable in the weak-coupling regime when the side leakage and cavity loss are low. The scheme opens promising possibilities for long-distance quantum communication, distributed quantum computation, and construction of remote quantum-information-processing networks.
机译:利用线性光学操纵,单光子,纠缠光子对,光子测量和经典通信,我们提出了一种双自旋量子位相门和通过作用于局部量子位在两个电子自旋之间传送非受控门的方案使用光学微腔中的量子点作用于远程量子比特。该方案基于自腔的自旋选择性光子反射,并通过在自组装GaAs-InAs量子点中顺序检测光子和单个电子自旋的单量子位旋转,以确定性的方式实现。评估该方案的可行性,表明当侧面泄漏和空腔损耗较低时,在弱耦合状态下可以实现高平均的浇口保真度。该方案为远程量子通信,分布式量子计算和远程量子信息处理网络的构建打开了广阔的前景。

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