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Resonant Mie Scattering (RMieS) correction of infrared spectra from highly scattering biological samples

机译:来自高度散射生物样品红外光谱的共振MIE散射(RMIE)校正

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摘要

Infrared spectra of single biological cells often exhibit the 'dispersion artefact' observed as a sharp decrease in intensity on the high wavenumber side of absorption bands, in particular the Amide I band at ∼1655 cm -1, causing a downward shift of the true peak position. The presence of this effect makes any biochemical interpretation of the spectra unreliable. Recent theory has shed light on the origins of the 'dispersion artefact' which has been attributed to resonant Mie scattering (RMieS). In this paper a preliminary algorithm for correcting RMieS is presented and evaluated using simulated data. Results show that the 'dispersion artefact' appears to be removed; however, the correction is not perfect. An iterative approach was subsequently implemented whereby the reference spectrum is improved after each iteration, resulting in a more accurate correction. Consequently the corrected spectra become increasingly more representative of the pure absorbance spectra. Using this correction method reliable peak positions can be obtained. © 2010 The Royal Society of Chemistry.
机译:单一生物细胞的红外光谱通常表现出“分散人工制品”被观察到吸收带的高波数侧的强度的急剧下降,特别是在~1655cm -1处的酰胺I带,导致真正峰的向下偏移位置。这种效果的存在使得任何生化解释不可靠。最近的理论对“分散人工制品”的起源来说,这归因于谐振米西散射(RMIE)。本文使用模拟数据呈现和评估校正RMIE的初步算法。结果表明,“分散人工制品”似乎被删除;但是,纠正并不完美。随后实施了一种迭代方法,在每次迭代之后提高了参考光谱,导致更准确的校正。因此,校正的光谱变得越来越多地代表纯吸光光谱。使用该校正方法可以获得可靠的峰值位置。 ©2010皇家化学学会。

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