约瑟夫森通量量子位测量的低反作用RF SQUID读出

V. Shnyrkov, A. Shapovalov, A. Kalenyuk, A. Dumik, O. Boliasova, A. Kordyuk
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引用次数: 1

摘要

超导量子比特展示了作为量子信息处理的可扩展块的良好前景。这些系统可以单独读出、寻址和控制,使它们成为最具吸引力的薄膜量子位。为了读出通量量子位的最终状态,必须进行量子测量。为了观察这种系统的动力学,人们需要一个具有特殊灵敏度和低反作用的快速磁力计。我们解决了减少RF SQUID读出电路的反向作用的问题,在电路集成的情况下,这可能会严重破坏约瑟夫森通量量子位。在传统的RF SQUID和直流SQUID电路中,这种反作用的主要来源是确保高阻尼的低欧姆分流电阻。通量量子位的优点是存在最佳偏置点,在一阶近似下,器件不受读出和控制线波动的影响。然而,即使这样的系统也有二阶耗散所限制的特性。利用基于非滞后绝热模式的RF SQUID的“理想参数读出”可以消除耗散。在本文中,我们提出了一个非滞后状态下的RF SQUID,作为一个快速、敏感和可扩展的读出系统,具有低反作用,用于测量基于通量量子比特的单毫瓦光子计数器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Back-Action RF SQUID Readout for a Josephson Flux Qubit Measurement
Superconducting qubits demonstrate good perspectives as scalable blocks for quantum information processing. These systems can be individually readout, addressed, and controlled, making them some of the most attractive thin-film qubits. Quantum measurements should be performed in order to readout the final state of flux qubits. To observe the dynamics of such systems, one requires a fast magnetometer with exceptional sensitivity and low back-action. We address the problem of reducing the back-action of an RF SQUID readout circuit, which may significantly destroy a Josephson flux qubit in the case of the circuits integration. The main sources of such back-action in conventional RF SQUID and DC SQUID circuits are low-ohmic shunting resistors ensuring high damping. The advantage of flux qubits is the presence of an optimal bias point at which, in the first-order approximation, the device is immune to fluctuations in readout and control lines. Nonetheless, even such systems have characteristics limited by a second-order dissipation. The dissipation can be eliminated by using an “ideal parametric readout” based on an RF SQUID acting in non-hysteretic adiabatic mode. In this paper, we propose an RF SQUID in a non-hysteretic regime as a fast, sensitive, and scalable readout system with low back-action for measurements of a single MW photon counter based on a flux qubit.
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