Shafi K Muhammed, Padhye A, Chandrashekar C M
Opt Express. 2023 Sep 25;31(20):32093-32104. doi: 10.1364/OE.496776.
Detecting object with low reflectivity embedded within a noisy background is a challenging task. Quantum correlations between pairs of quantum states of light, though are highly sensitive to background noise and losses, offer advantages over traditional illumination methods. Instead of using correlated photon pairs which are sensitive, we experimentally demonstrate the advantage of using heralded single-photons entangled in polarization and path degree of freedom for quantum illumination. In the study, the object of different reflectivity is placed along the path of the signal in a variable thermal background before taking the joint measurements and calculating the quantum correlations. We show the significant advantage of using non-interferometric measurements along the multiple paths for single photon to isolate the signal from the background noise and outperform in detecting and ranging the low reflectivity objects even when the signal-to-noise ratio is as low as 0.03. Decrease in visibility of polarization along the signal path also results in similar observations. This will have direct relevance to the development of single-photon based quantum LiDAR and quantum imaging.
在噪声背景中检测低反射率物体是一项具有挑战性的任务。光的量子态对之间的量子关联虽然对背景噪声和损耗高度敏感,但与传统照明方法相比具有优势。我们通过实验证明了利用在偏振和路径自由度上纠缠的预示单光子进行量子照明的优势,而不是使用敏感的关联光子对。在该研究中,在进行联合测量和计算量子关联之前,将不同反射率的物体置于可变热背景下信号路径上。我们展示了沿着多条路径对单光子进行非干涉测量的显著优势,即使在信噪比低至0.03时,也能将信号与背景噪声分离,并且在检测和测距低反射率物体方面表现出色。沿着信号路径的偏振可见度降低也会导致类似的观测结果。这将与基于单光子的量子激光雷达和量子成像的发展直接相关。