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Fluorescence modeling for optimized-binary compressive detection Raman spectroscopy
Author(s) -
Owen G. Rehrauer,
Bharat R. Mankani,
Gregery T. Buzzard,
Bradley J. Lucier,
Dor BenAmotz
Publication year - 2015
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.23.023935
Subject(s) - raman spectroscopy , fluorescence , photobleaching , materials science , raman scattering , binary number , optics , laser induced fluorescence , analytical chemistry (journal) , fluorescence spectroscopy , chemistry , chromatography , physics , mathematics , arithmetic
The recently-developed optimized binary compressive detection (OB-CD) strategy has been shown to be capable of using Raman spectral signatures to rapidly classify and quantify liquid samples and to image solid samples. Here we demonstrate that OB-CD can also be used to quantitatively separate Raman and fluorescence features, and thus facilitate Raman-based chemical analyses in the presence of fluorescence background. More specifically, we describe a general strategy for fitting and suppressing fluorescence background using OB-CD filters trained on third-degree Bernstein polynomials. We present results that demonstrate the utility of this strategy by comparing classification and quantitation results obtained from liquids and powdered mixtures, both with and without fluorescence. Our results demonstrate high-speed Raman-based quantitation in the presence of moderate fluorescence. Moreover, we show that this OB-CD based method is effective in suppressing fluorescence of variable shape, as well as fluorescence that changes during the measurement process, as a result of photobleaching.

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