Physics Department, McGill University, Montreal, Quebec, Canada.
Phys Rev Lett. 2012 Sep 21;109(12):123602. doi: 10.1103/PhysRevLett.109.123602. Epub 2012 Sep 19.
We analyze the use of a driven nonlinear cavity to make a weak continuous measurement of a dispersively coupled qubit. We calculate the backaction dephasing rate and measurement rate beyond leading-order perturbation theory using a phase-space approach which accounts for cavity noise squeezing. Surprisingly, we find that increasing the coupling strength beyond the regime describable by leading-order perturbation theory (i.e., linear response) allows one to come significantly closer to the quantum limit on the measurement efficiency. We interpret this behavior in terms of the non-Gaussian photon number fluctuations of the nonlinear cavity. Our results are relevant to recent experiments using superconducting microwave circuits to study quantum measurement.
我们分析了利用驱动非线性腔对色散耦合量子位进行弱连续测量的方法。我们使用相空间方法计算了反作用退相率和测量率,该方法考虑了腔噪声压缩。令人惊讶的是,我们发现,将耦合强度增加到超出主导阶微扰理论(即线性响应)可描述的范围,可使测量效率显著接近量子极限。我们根据非线性腔的非高斯光子数涨落来解释这种行为。我们的结果与最近使用超导微波电路研究量子测量的实验有关。