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柱面透镜和球面透镜组合光学系统的电场分布测定:光片荧光显微镜的完整理论模型

Determination of electric field distribution for the combined optical system of cylindrical lens and spherical lens: a complete theoretical model for light sheet fluorescence microscopy.

作者信息

K S Aiswarya, B R Ruchitha Prajwala, Singh Mayanglambam Suheshkumar

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2025 Aug 1;42(8):1144-1154. doi: 10.1364/JOSAA.560533.

Abstract

The physical characteristics of obtainable diffraction-limited light sheets (thickness ∼µ) are keys to the determination of achievable imaging performance of light sheet fluorescence microscopy (LSFM) imaging modality. The beam shape and its characteristics are solely defined by the optical characteristics of the illumination arm, i.e., by the optical characteristics of the optical components in the illumination arm and the beam profile of the incident optical beam. Typically, the illumination arm in LSFM is constituted by a cylindrical lens and a diffraction-limited spherical (converging) lens. The existing theoretical or analytical models are limited only to (i) an optical illumination arm with a single cylindrical lens (without a spherical lens) and (ii) a planar incident optical beam instead of the practically more relevant beam, for example, Gaussian. We report a complete and unique angular-spectrum-based theoretical formulation of beam-shaping, i.e., combining cylindrical and spherical lenses, for LSFM that holds true for Gaussian as well as planar beams. Validation studies, both experiments and numerical simulation, were conducted. Results demonstrate that our model enables us to estimate the performance indices with better accuracy [spatial (axial) resolution (∼2.18), imaging depth or admissible sample size/thickness (∼1.30), field of views (FOVs) (∼39.15), signal contrast ratio (CR) (∼8.65), and SNR (∼2.47)]. This report will be of significant impact on imaging (in general) and LSFM (specifically) and its technological advances.

摘要

可获得的衍射极限光片的物理特性(厚度约为微米)是决定光片荧光显微镜(LSFM)成像方式可实现成像性能的关键。光束形状及其特性完全由照明臂的光学特性决定,即由照明臂中光学元件的光学特性和入射光束的光束轮廓决定。通常,LSFM中的照明臂由一个柱面透镜和一个衍射极限球面(会聚)透镜组成。现有的理论或分析模型仅局限于(i)具有单个柱面透镜(无球面透镜)的光学照明臂,以及(ii)平面入射光束而非实际更相关的光束,例如高斯光束。我们报告了一种基于角谱的完整且独特的光束整形理论公式,即结合柱面透镜和球面透镜,该公式对高斯光束和平面光束均适用,适用于LSFM。我们进行了验证研究,包括实验和数值模拟。结果表明,我们的模型能够使我们更准确地估计性能指标[空间(轴向)分辨率(约2.18)、成像深度或可允许的样品尺寸/厚度(约1.30)、视野(FOV)(约39.15)、信号对比度(CR)(约8.65)和信噪比(SNR)(约2.47)]。本报告将对一般成像和特定的LSFM及其技术进步产生重大影响。

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