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Quantum metrology with parametric amplifier-based photon correlation interferometers

机译:基于参数放大器的光子相关干涉仪的量子计量

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摘要

Conventional interferometers usually utilize beam splitters for wave splitting and recombination. These interferometers are widely used for precision measurement. Their sensitivity for phase measurement is limited by the shot noise, which can be suppressed with squeezed states of light. Here we study a new type of interferometer in which the beam splitting and recombination elements are parametric amplifiers. We observe an improvement of 4.1±0.3 dB in signal-to-noise ratio compared with a conventional interferometer under the same operating condition, which is a 1.6-fold enhancement in rms phase measurement sensitivity beyond the shot noise limit. The improvement is due to signal enhancement. Combined with the squeezed state technique for shot noise suppression, this interferometer promises further improvement in sensitivity. Furthermore, because nonlinear processes are involved in this interferometer, we can couple a variety of different waves and form new types of hybrid interferometers, opening a door for many applications in metrology.
机译:常规的干涉仪通常利用分束器进行波分离和复合。这些干涉仪广泛用于精密测量。它们对相位测量的灵敏度受到散粒噪声的限制,散粒噪声可以通过压缩光的状态来抑制。在这里,我们研究一种新型的干涉仪,其中分束和重组元件是参数放大器。在相同的工作条件下,与传统的干涉仪相比,我们观察到信噪比提高了4.1±0.3 dB,这是均方根相位测量灵敏度提高了1.6倍,超出了散粒噪声极限。改善归因于信号增强。结合压缩状态技术来抑制散粒噪声,该干涉仪有望进一步提高灵敏度。此外,由于该干涉仪涉及非线性过程,因此我们可以耦合各种不同的波并形成新型的混合干涉仪,从而为计量学中的许多应用打开了大门。

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