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使用快照光学层析成像的高光谱三维吸收成像

Hyperspectral three-dimensional absorption imaging using snapshot optical tomography.

作者信息

Juntunen Cory, Abramczyk Andrew R, Woller Isabel M, Sung Yongjin

机构信息

College of Engineering and Applied Science, University of Wisconsin, Milwaukee, Wisconsin 53211, USA.

College of Health Sciences, University of Wisconsin, Milwaukee, Wisconsin 53211, USA.

出版信息

Phys Rev Appl. 2022 Sep;18(3). doi: 10.1103/physrevapplied.18.034055. Epub 2022 Sep 21.

Abstract

Hyperspectral imaging (HSI) records a series of two-dimensional (2D) images for different wavelengths to provide the chemical fingerprint at each pixel. Combining HSI with a tomographic data acquisition method, we can obtain the chemical fingerprint of a sample at each point in three-dimensional (3D) space. The so-called 3D HSI typically suffers from low imaging throughput due to the requirement of scanning the wavelength and rotating the beam or sample. In this paper we present an optical system which captures the entire four-dimensional (4D), i.e., 3D structure and 1D spectrum, dataset of a sample with the same throughput of conventional HSI systems. Our system works by combining snapshot projection optical tomography (SPOT) which collects multiple projection images with a single snapshot, and Fourier-transform spectroscopy (FTS) which results in superior spectral resolution by collecting and processing a series of interferogram images. Using this hyperspectral SPOT system we imaged the volumetric absorbance of dyed polystyrene microbeads, oxygenated red blood cells (RBCs), and deoxygenated RBCs. The 4D optical system demonstrated in this paper provides a tool for high-throughput chemical imaging of complex microscopic specimens.

摘要

高光谱成像(HSI)记录一系列不同波长的二维(2D)图像,以提供每个像素处的化学指纹图谱。将HSI与断层扫描数据采集方法相结合,我们可以获得样品在三维(3D)空间中每个点的化学指纹图谱。由于需要扫描波长并旋转光束或样品,所谓的3D HSI通常存在成像通量低的问题。在本文中,我们提出了一种光学系统,该系统能够以与传统HSI系统相同的通量捕获样品的整个四维(4D)数据集,即3D结构和1D光谱。我们的系统通过将收集多个投影图像的单张快照的快照投影光学断层扫描(SPOT)与通过收集和处理一系列干涉图图像而获得卓越光谱分辨率的傅里叶变换光谱(FTS)相结合来工作。使用这种高光谱SPOT系统,我们对染色的聚苯乙烯微珠、含氧红细胞(RBC)和脱氧RBC的体积吸光度进行了成像。本文展示的4D光学系统为复杂微观标本的高通量化学成像提供了一种工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e512/10237288/b725aa1532a8/nihms-1887660-f0001.jpg

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