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Improving interferometers by quantum light: toward testing quantum gravity on an optical bench

机译:通过量子光改善干涉仪:在光具座上测试量子引力

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We analyze in detail a system of two interferometers aimed at the detection of extremely faint phase fluctuations. The idea behind is that a correlated phase-signal like the one predicted by some phenomenological theory of Quantum Gravity (QG) could emerge by correlating the output ports of the interferometers, even when in the single interferometer it confounds with the background. We demonstrated that injecting quantum light in the free ports of the interferometers can reduce the photon noise of the system beyond the shot-noise, enhancing the resolution in the phase-correlation estimation. Our results confirms the benefit of using squeezed beams together with strong coherent beams in interferometry, even in this correlated case. On the other hand, our results concerning the possible use of photon number entanglement in twin beam state pave the way to interesting and probably unexplored areas of application of bipartite entanglement and, in particular, the possibility of reaching surprising uncertainty reduction exploiting new interferometric configurations, as in the case of the system described here.
机译:我们详细分析了两个干涉仪组成的系统,旨在检测极微弱的相位波动。背后的想法是,通过将干涉仪的输出端口进行关联,可能会出现一种相关的相位信号,如一些量子现象学理论(QG)所预测的那样,即使在单个干涉仪中它也会与背景混淆。我们证明了在干涉仪的自由端口中注入量子光可以将系统的光子噪声降低到散粒噪声之外,从而提高了相位相关估计的分辨率。我们的结果证实了即使在这种相关情况下,在干涉测量中使用压缩光束和强相干光束的好处。另一方面,我们关于在双光束状态下可能使用光子数纠缠的结果为二分纠缠的有趣应用领域(可能是未探索的应用领域)铺平了道路,尤其是利用新的干涉测量配置实现了令人惊讶的不确定性降低的可能性,就像此处描述的系统一样。

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