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利用多波长同轴全息术从单次拍摄全息图中进行物平面检测和相位恢复。

Object plane detection and phase retrieval from single-shot holograms using multi-wavelength in-line holography.

作者信息

Zhang Hanqing, Stangner Tim, Wiklund Krister, Andersson Magnus

出版信息

Appl Opt. 2018 Nov 20;57(33):9855-9862. doi: 10.1364/AO.57.009855.

Abstract

Phase retrieval and the twin-image problem in digital in-line holographic microscopy can be resolved by iterative reconstruction routines. However, recovering the phase properties of an object in a hologram requires an object plane to be chosen correctly for reconstruction. In this work, we present a novel multi-wavelength iterative algorithm to determine the object plane using single-shot holograms recorded at multiple wavelengths in an in-line holographic microscope. Using micro-sized objects, we verify the object positioning capabilities of the method for various shapes and derive the phase information using synthetic and experimental data. Experimentally, we built a compact digital in-line holographic microscopy setup around a standard optical microscope with a regular RGB-CCD camera and acquired holograms of micro-spheres, E. coli, and red blood cells, which are illuminated using three lasers operating at 491 nm, 532 nm, and 633 nm, respectively. We demonstrate that our method provides accurate object plane detection and phase retrieval under noisy conditions, e.g., using low-contrast holograms with an inhomogeneous background. This method allows for automatic positioning and phase retrieval suitable for holographic particle velocimetry, and object tracking in biophysical or colloidal research.

摘要

数字同轴全息显微镜中的相位恢复和孪生像问题可以通过迭代重建程序来解决。然而,要恢复全息图中物体的相位特性,需要正确选择重建的物平面。在这项工作中,我们提出了一种新颖的多波长迭代算法,用于使用在同轴全息显微镜中多个波长记录的单次全息图来确定物平面。使用微型物体,我们验证了该方法对各种形状的物体定位能力,并使用合成数据和实验数据推导相位信息。在实验中,我们围绕配备常规RGB-CCD相机的标准光学显微镜构建了一个紧凑的数字同轴全息显微镜装置,并获取了微球、大肠杆菌和红细胞的全息图,这些物体分别由工作在491nm、532nm和633nm的三束激光照明。我们证明,我们的方法在有噪声的条件下,例如使用具有不均匀背景的低对比度全息图时,能够提供准确的物平面检测和相位恢复。该方法适用于全息粒子测速以及生物物理或胶体研究中的物体跟踪,可实现自动定位和相位恢复。

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