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Design and analysis of multi-color confocal microscopy with a wavelength scanning detector

机译:使用波长扫描检测器的多色共聚焦显微镜的设计和分析

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Spectral (or multi-color) microscopy has the ability to detect the fluorescent light of biological specimens with a broad range of wavelengths. Currently, the acousto-optic tunable filter (AOTF) is widely used in spectral microscopy as a substitute for a multiple-dichroic mirror to divide excitation and emission signals while maintaining sufficient light efficiency. In addition, systems which utilize an AOTF have a very fast switching speed and high resolution for wavelength selection. In this paper, confocal-spectral microscopy is proposed with a particular spectrometer design with a wavelength-scanning galvano-mirror. This enables the detection of broadband (480–700 nm) fluorescence signals by a single point detector (photomultiplier tube) instead of a CCD pixel array. For this purpose, a number of optical elements were applicably designed. A prism is used to amplify the dispersion angle, and the design of the relay optics matches the signals to the diameter of the wavelength-scanning galvano-mirror. Also, a birefringent material known as calcite is used to offset the displacement error at the image plane depending on the polarization states. The proposed multi-color confocal microscopy with the unique detection body has many advantages in comparison with commercial devices. In terms of the detection method, it can be easily applied to other imaging modalities.
机译:光谱(或多色)显微镜具有检测具有广泛波长范围的生物样本荧光的能力。当前,声光可调滤光片(AOTF)在光谱显微术中被广泛使用,以替代多色镜以划分激发和发射信号,同时保持足够的光效率。另外,利用AOTF的系统具有非常快的切换速度和用于波长选择的高分辨率。在本文中,提出了一种共聚焦光谱显微镜,并采用了具有波长扫描电镜的特殊光谱仪设计。这样就可以通过单点检测器(光电倍增管)而不是CCD像素阵列来检测宽带(480–700 nm)荧光信号。为此目的,设计了许多光学元件。使用棱镜来放大色散角,并且中继光学器件的设计将信号与波长扫描电镜的直径相匹配。另外,根据偏振态,使用称为方解石的双折射材料来抵消像平面处的位移误差。所提出的具有独特检测体的多色共聚焦显微镜与商用设备相比具有许多优势。就检测方法而言,它可以容易地应用于其他成像模态。

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