Synthetic Fourier Domain Optical Coherence Tomography

IF 3.7 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Photonics Research Pub Date : 2024-01-28 DOI:10.1002/adpr.202300260
Sergey Alexandrov, Ryan McAuley, Rajib Dey, Anand Arangath, Yi Zhou, Andrew Nolan, Peter Owens, Martin Leahy
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Abstract

A novel approach for image formation in optical coherence tomography (OCT) and microscopy is presented. The depth resolution of OCT, including recently developed nanosensitive OCT (nsOCT), is limited by the spectral bandwidth of the light source used for illumination. The proposed approach, synthetic OCT (synOCT), permits label-free, depth-resolved quantitative visualization of the subwavelength-sized structures with nanosensitivity. Using synOCT it is possible to estimate the contribution of axial Fourier components of an object's structure in image formation at each small volume within the image. The size of such areas can be smaller than the resolution limit of the imaging system that provides potential for super-resolution imaging. Visualization of the subwavelength periodic structures and quantitative visualization of the subwavelength internal structures of highly scattering biological samples, within voxels smaller than resolution limit of the imaging system, are demonstrated. In contrast to nsOCT, the trade-off between spectral and spatial resolution is removed which results in dramatic improvement of both spectral and spatial resolution in synOCT relative to nsOCT.

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合成傅立叶域光学相干断层扫描
本文介绍了一种用于光学相干断层扫描(OCT)和显微镜成像的新方法。光学相干断层扫描(包括最近开发的纳米敏感光学相干断层扫描(nsOCT))的深度分辨率受到用于照明的光源光谱带宽的限制。所提出的合成 OCT(synOCT)方法允许以纳米灵敏度对亚波长尺寸结构进行无标记、深度分辨的定量可视化。利用 synOCT,可以估算出物体结构的轴向傅立叶分量对图像内每个小体积的图像形成的贡献。这些区域的大小可能小于成像系统的分辨率极限,从而为超分辨率成像提供了可能。在小于成像系统分辨率极限的体素内,亚波长周期性结构的可视化和高散射生物样本亚波长内部结构的定量可视化得到了展示。与 nsOCT 相比,synOCT 消除了光谱和空间分辨率之间的权衡,从而大幅提高了光谱和空间分辨率。
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