论文标题

单光子检测的两光子相位感应

Two-photon phase-sensing with single-photon detection

论文作者

Vergyris, Panagiotis, Babin, Charles, Nold, Raphael, Gouzien, Elie, Herrmann, Harald, Silberhorn, Christine, Alibart, Olivier, Tanzilli, Sébastien, Kaiser, Florian

论文摘要

路径输入的多光子状态允许超出射击量极限的光相位感应,前提是可以实施有效的平价测量。在实验上意识到这是技术要求的,因为它需要一致的单光子检测与所涉及的光子数量成正比,这代表了实现与经典方法相对于经典方法实现实用量子优势的严重挑战。在这里,我们基于两个光子对创建事件的超级量子来利用先进的量子状态工程,以实现一种绕过此问题的新方法。特别是,使用两光子量子状态探测光相移,其信息随后被有效地传输到单光子状态。值得注意的是,如果没有任何多光子检测,我们通过测量光电二极管上单光束的平均强度来推断相移,类似于标准经典测量值。重要的是,我们的方法维持量子优势:对于同一相移的许多干扰条纹被观察到了两倍,对应于n = 2路径符合光子。我们的结果表明,可以在标准强度测量中充分利用量子增强相位感应的优势,从而为资源有效和实用的量子光学计量学铺平了道路。

Path-entangled multi-photon states allow optical phase-sensing beyond the shot-noise limit, provided that an efficient parity measurement can be implemented. Realising this experimentally is technologically demanding, as it requires coincident single-photon detection proportional to the number of photons involved, which represents a severe challenge for achieving a practical quantum advantage over classical methods. Here, we exploit advanced quantum state engineering based on superposing two photon-pair creation events to realise a new approach that bypasses this issue. In particular, optical phase shifts are probed with a two-photon quantum state whose information is subsequently effectively transferred to a single-photon state. Notably, without any multiphoton detection, we infer phase shifts by measuring the average intensity of the single-photon beam on a photodiode, in analogy to standard classical measurements. Importantly, our approach maintains the quantum advantage: twice as many interference fringes are observed for the same phase shift, corresponding to N=2 path-entangled photons. Our results demonstrate that the advantages of quantum-enhanced phase-sensing can be fully exploited in standard intensity measurements, paving the way towards resource-efficient and practical quantum optical metrology.

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