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Multivariate Statistical Methods that Enable Fast Raman Spectroscopy

机译:支持快速拉曼光谱的多元统计方法

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摘要

Raman spectroscopy is a useful tool in investigating inter- and intra-molecular interactions as well as classifying and quantifying chemical species in a sample. Many materials of societal interest, such as proteins and pharmaceuticals, have distinctive Raman spectra with sharp features. However, the adoption of Raman spectra has been hindered by the low rate of Raman scattering, interference from fluorescence, and high spectrometer costs. This work demonstrates multivariate stastical methods that enable fast Raman measurements, despite the low rate of Raman scattering. These methods include a novel type of spectrometer, that uses computer-controlled optical filters to efficiently capture Raman photons and multiplex them onto either one or two photon counting detector(s). This method, referred to as optimal-binary compressive detection (OB-CD), allows for the collection of chemical information in 10's of microseconds, rather than milliseconds as might be common for Raman spectroscopy performed using a multichannel detector. A method for orthogonalizing moderate amounts of fluorescence from Raman signal in OB-CD is presented. Fast imaging, with speeds as high as 2.5 frames-per-second, is demonstrated and algorithms for image denoising are discussed. Lastly, methods that enables Raman classification using minimal computation time and a technique for accurately processing Raman thermometry data are presented.
机译:拉曼光谱法是研究分子间和分子间相互作用以及对样品中的化学种类进行分类和定量的有用工具。许多社会感兴趣的材料,例如蛋白质和药物,都具有鲜明的拉曼光谱和鲜明的特征。但是,拉曼光谱的采用由于拉曼散射率低,荧光干扰和光谱仪成本高而受到阻碍。这项工作演示了尽管拉曼散射率低,但仍能够进行快速拉曼测量的多元静态方法。这些方法包括一种新型的光谱仪,该光谱仪使用计算机控制的滤光片有效捕获拉曼光子并将其多路复用到一个或两个光子计数检测器上。这种方法称为最佳二进制压缩检测(OB-CD),它允许以10微秒为单位收集化学信息,而不是使用多通道检测器进行拉曼光谱分析时通常所需要的毫秒。提出了一种正交化OB-CD中来自拉曼信号的适量荧光的方法。演示了速度高达每秒2.5帧的快速成像,并讨论了图像去噪算法。最后,提出了使用最少的计算时间就可以进行拉曼分类的方法,以及精确处理拉曼测温数据的技术。

著录项

  • 作者

    Rehrauer, Owen G.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Chemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 143 p.
  • 总页数 143
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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