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用于超分辨率成像的点扫描傅里叶叠层相干反斯托克斯拉曼散射显微镜

Fourier Ptychographic Coherent Anti-Stokes Raman Scattering Microscopy with Point-Scanning for Super-Resolution Imaging.

作者信息

Gong Li, Dou Yanxin, Lin Shulang, Osipowicz Thomas, Huang Zhiwei

机构信息

Optical Bioimaging Laboratory, Department of Biomedical Engineering, College of Design and Engineering, National University of Singapore, Singapore, 117576, Singapore.

Center for ion beam applications (CIBA), Department of physics, Faculty of Science, National University of Singapore, Singapore, 117542, Singapore.

出版信息

Small Methods. 2024 Oct 4:e2400765. doi: 10.1002/smtd.202400765.

Abstract

Fourier ptychography (FP) is a high resolution wide-field imaging method based on the extended aperture in the Fourier space, which is synthesized from raw images with varying illumination angles. If FP is extended to coherent nonlinear optical imaging, the resolution could be further improved due to the increase of the cutoff frequency of the synthesized coherent optical transfer function (C-OTF) with respect to the order of nonlinear optical processes. However, there is a fundamental conflict between wide-field FP and nonlinear optical imaging, whereby the nonlinear optical imaging typically requires a focused excitation laser beam with high power density. To tackle the problem, in this work, a unique point-scanning FP (PS-FP) method is presented for super-resolution nonlinear optical imaging, in which the nonlinear optical signal is obtained by using focused laser beam, while the conventional FP algorithm can still be used to retrieve the super-resolution image. PS-FP coherent anti-Stokes Raman scattering (PS-FP-CARS) imaging on a variety of samples, where a 1.8-fold expansion of the OTF is achieved experimentally for enhancing vibrational imaging. Further theoretical calculation shows that the C-OTF of PS-FP higher-order CARS (PS-FP-HO-CARS) can be expanded up to ≈4.9-fold, thereby improving the spatial resolution by ≈3-fold in comparison with conventional point-scanning CARS with under tightly focused beams. The generality of PS-FP method developed in this work can be adapted to other coherent nonlinear optical imaging modalities for super-resolution imaging in tissue and cells.

摘要

傅里叶叠层成像术(FP)是一种基于傅里叶空间中扩展孔径的高分辨率宽场成像方法,它由具有不同照明角度的原始图像合成。如果将FP扩展到相干非线性光学成像,由于合成相干光学传递函数(C-OTF)的截止频率相对于非线性光学过程的阶数增加,分辨率可以进一步提高。然而,宽场FP与非线性光学成像之间存在根本冲突,即非线性光学成像通常需要具有高功率密度的聚焦激发激光束。为了解决这个问题,在这项工作中,提出了一种独特的点扫描FP(PS-FP)方法用于超分辨率非线性光学成像,其中通过使用聚焦激光束获得非线性光学信号,同时仍可使用传统的FP算法来检索超分辨率图像。在各种样品上进行了PS-FP相干反斯托克斯拉曼散射(PS-FP-CARS)成像,实验上实现了OTF的1.8倍扩展以增强振动成像。进一步的理论计算表明,PS-FP高阶CARS(PS-FP-HO-CARS)的C-OTF可以扩展到约4.9倍,从而与紧密聚焦光束下的传统点扫描CARS相比,空间分辨率提高了约3倍。这项工作中开发的PS-FP方法的通用性可适用于其他相干非线性光学成像模式,用于组织和细胞中的超分辨率成像。

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