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1064 nm Raman Microscopy Using a Multifocal Excitation Pattern

机译:使用多焦点激励模式的1064 nm拉曼显微镜显微镜

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Raman microscopy is well recognized as a nondestructive, label-free biomedical imaging method that provides abundantchemical information of the specimen. Excitation wavelengths in deep near-infrared (e.g., 1064 nm) are used in certainsituations, such as when analyzing photosensitive/photolabile specimens to suppress the strong fluorescence and to avoidphotodamage. However, the speed and quality of 1064 nm Raman imaging suffers from the low scattering efficiency atthis long excitation wavelength and the high noise level of InGaAs detectors. In this study, we investigated a multifocalpatterned approach for 1064 nm Raman imaging. A 2-D Hadamard-coded multifocal array generated with X-Y scanninggalvomirrors is used to excite and collect multiple Raman spectra simultaneously. The individual spectrum at each focusis retrieved and reconstructed from the superimposed spectra of the multifocal patterns. We demonstrate that themultifocal approach improves both the signal-to-noise ratio (SNR) and the imaging speed of Raman microscopy.Compared to the traditional point scan, at optimal detector conditions, the multifocal approach can be two-times fasterfor achieving the same image quality and SNR, or provides spectra with three-times higher SNR while applying thesame energy dose at the focus. Such improvements of imaging speed and SNR increase up to one or two orders ofmagnitude under higher noise conditions, such as higher readout rate and higher detector temperatures. The multifocalapproach presents advantages for certain imaging situations, such as when heating related damage limits the excitationenergy dose that can be applied to the sample.
机译:拉曼显微镜经得很好地被认为是无损性的无标签的生物医学成像方法,提供丰富的标本的化学信息。在某些情况下使用深近红外(例如,1064nm)的激发波长情况,例如在分析光敏/光图标本时抑制强荧光并避免贴图。然而,1064nm拉曼成像的速度和质量遭受低散射效率这种长激发波长和InGaAs探测器的高噪声水平。在这项研究中,我们调查了多焦点1064 nm拉曼成像的图案方法。使用X-Y扫描产生的2-D Hadamard编码的多焦数阵列GalvomiRrors用于激发和同时收集多个拉曼光谱。每个焦点的个体谱从多焦点图案的叠加光谱检索并重建。我们证明了多焦点方法改善了拉曼显微镜的信噪比(SNR)和成像速度。与传统的点扫描相比,在最佳探测器条件下,多焦点方法可以更快两倍为了实现相同的图像质量和SNR,或者在应用时提供三倍高的SNR光谱相同的能量剂量在焦点上。成像速度和SNR的改善增加了一个或两个订单噪声条件下的幅度,例如更高的读出率和更高的检测器温度。多焦点方法对某些成像情况提出了优势,例如当加热相关损伤时限制激发能量剂量可应用于样品。

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