全场光学相干层析成像中的自适应相干体

IF 1.6 Q3 OPTICS
OSA Continuum Pub Date : 2021-10-04 DOI:10.1364/osac.442310
N. Mekhileri, L. Andrique, G. Recher, P. Nassoy, A. Badon
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引用次数: 0

摘要

光学切片是观察扩展生物样品的工具。它允许只观察样品的一片,同时拒绝来自焦外深度的贡献。然后,整个体积的获取需要样品或焦点的轴向位移。为了满足奈奎斯特采样,这个轴向位移必须等于轴向分辨率的一半。由于在大多数成像技术中,横向分辨率和轴向分辨率是由显微镜物镜的数值孔径耦合的,因此体积的高分辨率成像是一项耗时的任务,特别是由于轴向扫描速度慢。在这里,我们建议通过过滤干涉成像技术的照明光谱来适应轴向分辨率或相干体的轴向范围。我们将该方法应用于全场光学相干层析成像,并显示了轴向范围从1.5 μm到15 μm的调整,从而可以适应采集时间和数据量。我们最后证明,该方法特别适合成像大型生物样品,如毫米工程组织。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive coherence volume in full-field opticalcoherence tomography
Optical sectioning is instrumental for the observation of extended biological samples. It allows the observation of only a slice of the sample while rejecting contributions from out of focus depths. The acquisition of the whole volume then requires an axial displacement of the sample or the focus. To satisfy Nyquist sampling, this axial displacement has to be equal to half the axial resolution. As lateral and axial resolutions are coupled by the numerical aperture of the microscope objective in most imaging techniques, high-resolution imaging of a volume is a time-consuming task, especially caused by the slow axial scanning. Here, we propose to adapt the axial resolution, or axial extent of the coherence volume, by filtering the spectrum of the illumination of an interferometric imaging technique. We applied our approach on full-field optical coherence tomography and show a tuning of this axial extent from 1.5 to 15 μm, allowing to adapt both the acquisition time and the amount of data. We finally demonstrate that the method is especially suited to image large biological samples such as millimetric engineered tissues.
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来源期刊
OSA Continuum
OSA Continuum OPTICS-
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