de Las Heras Alberto Muñoz, Porras Diego, González-Tudela Alejandro
Institute of Fundamental Physics IFF-CSIC, Calle Serrano 113b, 28006, Madrid, Spain.
Nanophotonics. 2025 Feb 20;14(11):2075-2085. doi: 10.1515/nanoph-2024-0640. eCollection 2025 Jun.
Photonic quantum metrology enables the measurement of physical parameters with precision surpassing classical limits by using quantum states of light. However, generating states providing a large metrological advantage is hard because standard probabilistic methods suffer from low generation rates. Deterministic protocols using non-linear interactions offer a path to overcome this problem, but they are currently limited by the errors introduced during the interaction time. Thus, finding strategies to minimize the interaction time of these non-linearities is still a relevant question. In this work, we introduce and compare different deterministic strategies based on continuous and programmable Jaynes-Cummings and Kerr-type interactions, aiming to maximize the metrological advantage while minimizing the interaction time. We find that programmable interactions provide a larger metrological advantage than continuous operations at the expense of slightly larger interaction times. We show that while for Jaynes-Cummings non-linearities the interaction time grows with the photon number, for Kerr-type ones it decreases, favoring the scalability to big photon numbers. Finally, we also optimize different measurement strategies for the deterministically generated states based on photon-counting and homodyne detection.
光子量子计量学通过利用光的量子态,能够以超越经典极限的精度测量物理参数。然而,生成具有巨大计量优势的量子态很困难,因为标准概率方法的生成率较低。使用非线性相互作用的确定性协议提供了一条克服此问题的途径,但目前它们受到相互作用时间内引入的误差的限制。因此,找到使这些非线性相互作用时间最小化的策略仍然是一个重要问题。在这项工作中,我们引入并比较了基于连续和可编程的Jaynes-Cummings以及Kerr型相互作用的不同确定性策略,旨在在最小化相互作用时间的同时最大化计量优势。我们发现,可编程相互作用比连续操作具有更大的计量优势,但代价是相互作用时间略长。我们表明,虽然对于Jaynes-Cummings非线性,相互作用时间随光子数增加,而对于Kerr型非线性,相互作用时间会减少,这有利于向大光子数的可扩展性。最后,我们还针对基于光子计数和零差检测的确定性生成态优化了不同的测量策略。