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Engineering decoherence in Josephson persistent-current qubits

机译:约瑟夫逊恒流量子位中的工程去相干

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We discuss the relaxation and dephasing rates that result from the control and the measurement setup itself in experiments on Josephson persistent-current qubits. For control and measurement of the qubit state, the qubit is inductively coupled to electromagnetic circuity. We show how this system can be mapped on the spin-boson model, and how the spectral density of the bosonic bath can be derived from the electromagnetic impedance that is coupled to the qubit. Part of the electromagnetic environment is a measurement apparatus (DC-SQUID), that is permanently coupled to the single quantum system that is studied. Since there is an obvious conflict between long coherence times and an efficient measurement scheme, the measurement process is analyzed in detail for different measurement schemes. We show, that the coupling of the measurement apparatus to the qubit can be controlled in situ. Parameters that can be realized in experiments today are used for a quantitative evaluation, and it is shown that the relaxation and dephasing rates that are induced by the measurement setup can be made low enough for a time-resolved study of the quantum dynamics of Josephson persistent-current qubits. Our results can be generalized as engineering rules for the read-out of related qubit systems.
机译:我们讨论了在约瑟夫森持续电流量子位的实验中,由控制和测量装置本身引起的弛豫和移相速率。为了控制和测量量子位状态,量子位被感应耦合到电磁电路。我们展示了如何将该系统映射到自旋玻色子模型上,以及如何从耦合到量子位的电磁阻抗中导出玻色子浴的频谱密度。电磁环境的一部分是测量设备(DC-SQUID),该设备永久耦合到所研究的单量子系统。由于长相干时间与有效的测量方案之间存在明显的冲突,因此针对不同的测量方案详细分析了测量过程。我们表明,测量设备与量子位的耦合可以原位控制。今天可以在实验中实现的参数用于定量评估,结果表明,可以将测量设置引起的弛豫和相移速率降低得足够低,以便对约瑟夫森持续性的量子动力学进行时间分辨研究。 -当前量子位。我们的结果可以概括为用于读取相关qubit系统的工程规则。

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