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Generation and stabilization of a three-qubit entangled W state in circuit QED via quantum feedback control

机译:量子反馈控制电路QED中三量子位纠缠W态的产生和稳定

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Circuit cavity quantum electrodynamics (QED) is proving to be a powerful platform to implement quantum feedback control schemes due to the ability to control superconducting qubits and microwaves in a circuit. Here, we present a simple and promising quantum feedback control scheme for deterministic generation and stabilization of a three-qubit W state in the superconducting circuit QED system. The control scheme is based on continuous joint Zeno measurements of multiple qubits in a dispersive regime, which enables us not only to infer the state of the qubits for further information processing but also to create and stabilize the target W state through adaptive quantum feedback control.We simulate the dynamics of the proposed quantum feedback control scheme using the quantum trajectory approach with an effective stochastic maser equation obtained by a polaron-type transformationmethod and demonstrate that in the presence of moderate environmental decoherence, the average state fidelity higher than 0.9 can be achieved and maintained for a considerably long time (much longer than the single-qubit decoherence time). This control scheme is also shown to be robust against measurement inefficiency and individual qubit decay rate differences. Finally, the comparison of the polaron-type transformation method to the commonly used adiabatic elimination method to eliminate the cavity mode is presented.
机译:由于能够控制电路中的超导量子位和微波,电路腔量子电动力学(QED)被证明是实现量子反馈控制方案的强大平台。在这里,我们提出了一种简单而有希望的量子反馈控制方案,用于在超导电路QED系统中确定性生成和稳定三量子位W状态。该控制方案基于分散状态下多个量子位的连续联合Zeno测量,这不仅使我们能够推断出量子位的状态以进行进一步的信息处理,而且使我们能够通过自适应量子反馈控制来创建和稳定目标W状态。我们使用量子轨迹方法,通过极化子型转换方法获得有效的随机maser方程,模拟了所提出的量子反馈控制方案的动力学,并证明在存在适度的环境退相干的情况下,可以实现高于0.9的平均态保真度并维持了相当长的时间(比单量子比特的去相干时间长得多)。该控制方案还显示出对测量效率低下和各个量子位衰减率差异的鲁棒性。最后,介绍了极化子类型转换方法与常用的绝热消除方法消除腔模的比较。

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