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用于快速、无标记生物成像的宽带相干反斯托克斯拉曼散射(BCARS)显微镜。

Broadband coherent anti-Stokes Raman scattering (BCARS) microscopy for rapid, label-free biological imaging.

作者信息

Dixon Jessica Z, Chen Wei-Wen, Xu Haoyu, Audier Xavier, Cicerone Marcus T

机构信息

Department of Chemistry and Biochemistry, Georgia Institute of Technology, 950 Atlantic Drive, Atlanta, Georgia 30332, USA.

Department of Biomedical Engineering, Georgia Institute of Technology, 950 Atlantic Drive, Atlanta, Georgia 30332, USA.

出版信息

Rev Sci Instrum. 2025 Apr 1;96(4). doi: 10.1063/5.0253841.

Abstract

Broadband coherent anti-Stokes Raman scattering (BCARS) microscopy is a label-free imaging approach that provides detailed chemical information at high spatial resolution in a sample through nonlinear, coherent excitation of molecular vibrations and detection of Raman spectra. While its utility for biological imaging has been demonstrated, many aspects of this technique must mature before it can be widely adopted. One of the areas of required improvement is imaging speed-most BCARS implementations involve sample rastering, which limits imaging speed. Beam scanning can provide faster BCARS imaging but presents some unique challenges. Here, we describe a beam-scanning BCARS microscopy system that improves spatial resolution twofold and imaging speed by fivefold over a previous beam-scanning implementation. These enhancements were enabled by an improvement in supercontinuum power and the use of a sCMOS camera for its high data transfer rate and low read noise. Implementation of the sCMOS camera required correction for the significant pixel-to-pixel background and photon response nonuniformity. We report on the method that we implemented for calibrating and correcting the pixel-to-pixel differences in sCMOS camera noise.

摘要

宽带相干反斯托克斯拉曼散射(BCARS)显微镜是一种无标记成像方法,它通过分子振动的非线性相干激发和拉曼光谱检测,在高空间分辨率下为样品提供详细的化学信息。虽然其在生物成像方面的实用性已得到证明,但在该技术被广泛采用之前,许多方面仍需完善。需要改进的领域之一是成像速度——大多数BCARS实现方式都涉及样品光栅扫描,这限制了成像速度。光束扫描可以提供更快的BCARS成像,但也带来了一些独特的挑战。在这里,我们描述了一种光束扫描BCARS显微镜系统,与之前的光束扫描实现方式相比,其空间分辨率提高了两倍,成像速度提高了五倍。这些改进得益于超连续谱功率的提升以及使用了具有高数据传输速率和低读取噪声的sCMOS相机。sCMOS相机的应用需要校正显著的像素间背景和光子响应不均匀性。我们报告了我们为校准和校正sCMOS相机噪声中的像素间差异而实施的方法。

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