论文标题

测量背相对于用超导电路研究的量子时钟精度的影响

Effect of Measurement Backaction on Quantum Clock Precision Studied with a Superconducting Circuit

论文作者

He, Xin, Pakkiam, Prasanna, Gangat, Adil A., Kewming, Michael J., Milburn, Gerard J., Fedorov, Arkady

论文摘要

我们从理论上和实验研究量子时钟接近零温度的精度,明确考虑了连续测量的影响。时钟是由超导式旋转量子置量散布与开放的共面谐振器创建的。腔和值由连贯的场驱动,并用量子噪声限制的放大器监测腔输出。当连续测量较弱时,它会在量子位的能量概率分布的条件矩中诱导持续的相干振荡(随着波动的周期),这在谐振器的输出中表现出来。另一方面,强连续测量导致量子跳跃的不一致循环。从理论上讲,我们在每个制度中都找到了时钟精度的平等。我们独立于平等性而得出了精确度的动力学不确定性关系,并发现两种平等性都满足了这种不确定性关系。最后,我们在实验上验证了我们的量子时钟是否遵守精度的动力学不确定性关系,从而在时钟的(动力学)热力学行为及其精度之间明确联系,并实现了量子域中动力学不确定性关系的实验测试。

We theoretically and experimentally study the precision of a quantum clock near zero temperature, explicitly accounting for the effect of continuous measurement. The clock is created by a superconducting transmon qubit dispersively coupled to an open coplanar resonator. The cavity and qubit are driven by coherent fields, and the cavity output is monitored with a quantum-noise-limited amplifier. When the continuous measurement is weak, it induces persistent coherent oscillations (with fluctuating periods) in the conditional moments of the qubit's energy probability distribution, which are manifest in the output of the resonator. On the other hand, strong continuous measurement leads to an incoherent cycle of quantum jumps. We theoretically find an equality for the precision of the clock in each regime. Independently from the equalities, we derive a kinetic uncertainty relation for the precision, and find that both equalities satisfy this uncertainty relation. Finally, we experimentally verify that our quantum clock obeys the kinetic uncertainty relation for the precision, thus making an explicit link between the (kinetic) thermodynamic behavior of the clock and its precision, and achieving an experimental test of a kinetic uncertainty relation in the quantum domain.

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