论文标题

用两种模式挤压干涉仪降低量子读数的噪声

Noise reduction in qubit readout with a two-mode squeezed interferometer

论文作者

Liu, G., Cao, X., Chien, T. -C., Zhou, C., Lu, P., Hatridge, M.

论文摘要

具有缺陷的Qubit和门的易耐故障量子信息处理需要高效的量子非拆卸(QND)量子读数。在超导电路中,通过使用量子限制的参数放大器(例如Josephson参数转换器(JPC)),使用具有忠诚度超过99%的相干光的量子读数已达到99%。但是,这种测量的进一步改进在根本上受到用于读数的相干光的真空波动的限制。在这项工作中,我们测量了一个由两个JPC形成的不平衡的两模式挤压光干涉仪的Transmon Qubit/favity系统。第一个放大器会在其输出处生成两种模式的真空,在一个放大器与Transmon与干涉仪上一个臂上的Qubit/favity System相互作用后,由第二个分支移动并因Transmon的状态而将其重新组合。我们观察到与同一系统中相干的光读数相比,投影读数的功率信号噪声比(SNR)提高了31%。为了研究系统中两种模式挤压光的量子性能,我们还研究了弱测量值,令人惊讶地发现,调整干涉仪以尽可能无调的性能与我们读取的量子效率的提高相对于最佳设置的量子。这些增强功能可能使远程纠缠具有较低的效率组件,该系统在干涉仪的两个臂中都有Qubits。

Fault-tolerant quantum information processing with flawed qubits and gates requires highly efficient, quantum non-demolition (QND) qubit readout. In superconducting circuits, qubit readout using coherent light with fidelity above 99% has been achieved by using quantum-limited parametric amplifiers such as the Josephson Parametric Converter (JPC). However, further improvement of such measurement is fundamentally limited by the vacuum fluctuations of the coherent light used for readout. In this work we measure a transmon qubit/cavity system with an unbalanced two-mode squeezed light interferometer formed from two JPCs. The first amplifier generates two-mode squeezed vacuum at its output, which is coherently recombined by the second amplifier after one branch is shifted and displaced by the transmon's state after it interacts with the qubit/cavity system on one arm of the interferometer. We have observed a 31% improvement in power Signal-to-Noise Ratio (SNR) of projective readout compared to that of coherent light readout in the same system. To investigate the quantum properties of the two-mode squeezed light in the system, we also studied weak measurement and found, surprisingly, that tuning the interferometer to be as unprojective as possible was associated with an increase in the quantum efficiency of our readout relative to the optimum setting for projective measurement. These enhancements may enable remote entanglement with lower efficiency components in a system with qubits in both arms of the interferometer.

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