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使用多个照明源提高纤维束同轴全息显微镜的分辨率。

Improved resolution in fiber bundle inline holographic microscopy using multiple illumination sources.

作者信息

Hughes Michael R, McCall Callum

机构信息

Applied Optics Group, School of Physics and Astronomy, University of Kent, Canterbury, Kent, CT2 7NH, United Kingdom.

出版信息

Biomed Opt Express. 2024 Feb 9;15(3):1500-1514. doi: 10.1364/BOE.516030. eCollection 2024 Mar 1.

Abstract

Recent work has shown that high-quality inline holographic microscopy images can be captured through fiber imaging bundles. Speckle patterns arising from modal interference within the bundle cores can be minimized by use of a partially-coherent optical source such as an LED delivered via a multimode fiber. This allows numerical refocusing of holograms from samples at working distances of up to approximately 1 mm from the fiber bundle before the finite coherence begins to degrade the lateral resolution. However, at short working distances the lateral resolution is limited not by coherence, but by sampling effects due to core-to-core spacing in the bundle. In this article we demonstrate that multiple shifted holograms can be combined to improve the resolution by a factor of two. The shifted holograms can be rapidly acquired by sequentially firing LEDs, which are each coupled to their own, mutually offset, illumination fiber. Following a one-time calibration, resolution-enhanced images are created in real-time at an equivalent net frame rate of up to 7.5 Hz. The resolution improvement is demonstrated quantitatively using a resolution target and qualitatively using mounted biological slides. At longer working distances, beyond 0.6 mm, the improvement is reduced as resolution becomes limited by the source spatial and temporal coherence.

摘要

最近的研究表明,通过光纤成像束可以捕获高质量的在线全息显微镜图像。通过使用部分相干光源(如通过多模光纤传输的发光二极管),可以将束芯内模态干涉产生的散斑图案最小化。这使得在有限相干性开始降低横向分辨率之前,能够对距离光纤束约1毫米工作距离处的样品全息图进行数值重聚焦。然而,在短工作距离下,横向分辨率不是受相干性限制,而是受束中芯到芯间距的采样效应限制。在本文中,我们证明了多个移位全息图可以组合起来将分辨率提高两倍。移位全息图可以通过依次触发发光二极管快速获取,每个发光二极管都耦合到各自相互偏移的照明光纤。经过一次校准后,以高达7.5赫兹的等效净帧率实时创建分辨率增强的图像。使用分辨率靶标定量展示了分辨率的提高,并使用固定的生物载玻片定性展示了分辨率的提高。在超过0.6毫米的较长工作距离下,由于分辨率受光源空间和时间相干性限制,分辨率的提高会降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf50/10942680/8de7b08d1f43/boe-15-3-1500-g001.jpg

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本文引用的文献

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Real-timing processing of fiber bundle endomicroscopy images in Python using PyFibreBundle.
Appl Opt. 2023 Dec 1;62(34):9041-9050. doi: 10.1364/AO.503700.
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Biomed Opt Express. 2018 Sep 6;9(10):4649-4664. doi: 10.1364/BOE.9.004649. eCollection 2018 Oct 1.

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