论文标题

量子相关灯场显微镜具有极高的景深

Quantum correlation light-field microscope with extreme depth of field

论文作者

Zhang, Yingwen, England, Duncan, Orth, Antony, Karimi, Ebrahim, Sussman, Benjamin

论文摘要

光场显微镜(LFM)是一种3D显微镜技术,通过同时捕获光照明场景的光的位置和动量(角度)信息,从而获得样品的体积信息。常规的LFM设计通常需要在位置和动量解决方案之间进行权衡,这需要一个人牺牲解决方案的能力以增加景深(DOF),反之亦然。在这项工作中,我们通过利用时空纠缠光子对之间的固有相关性来展示不需要这种权衡的LFM设计。在这里,一对中的一个光子用于照亮样品,从该样品中,光子的位置信息直接由相机捕获。借助两个光子之间的强动量抗相关,可以通过测量其纠缠伙伴在其他相机上的角度来推断照明光子的动量信息。通过使用射线追踪和用于光场重建的Gerchberg-Saxton型算法的组合,我们证明,可以使用$ \ sim500 $ $ $ $ $ m的DOF保持5 $μ$ M的分辨能量,最新的LFM Designs of The of Concoment of Gondigons of Gondiencation sirscope的DOF可以保持3倍。在极端情况下,以100 $ $ m的解决能力,可以在无限的DOF附近实现。

Light-field microscopy (LFM) is a 3D microscopy technique whereby volumetric information of a sample is gained by simultaneously capturing both the position and momentum (angular) information of light illuminating a scene. Conventional LFM designs generally require a trade-off between position and momentum resolution, requiring one to sacrifice resolving power for increased depth of field (DOF) or vice versa. In this work, we demonstrate a LFM design that does not require this trade-off by utilizing the inherent correlations between spatial-temporal entangled photon pairs. Here, one photon from the pair is used to illuminate a sample from which the position information of the photon is captured directly by a camera. By virtue of the strong momentum anti-correlation between the two photons, the momentum information of the illumination photon can then be inferred by measuring the angle of its entangled partner on a different camera. By using a combination of ray-tracing and a Gerchberg-Saxton type algorithm for the light field reconstruction, we demonstrate that a resolving power of 5 $μ$m can be maintained with a DOF of $\sim500$ $μ$m, approximately 3 times of the latest LFM designs or $>100$ time that of a conventional microscope. In the extreme, at a resolving power of 100 $μ$m, it is possible to achieve near infinite DOF.

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