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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Infrared spectral model for subwavelength particles of mixed composition based on the spectra of individual particles with calibration data for airborne dust
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Infrared spectral model for subwavelength particles of mixed composition based on the spectra of individual particles with calibration data for airborne dust

机译:基于单个粒子的光谱和机载粉尘校准数据的混合成分亚波长粒子的红外光谱模型

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A Mie-Bruggeman spectral model is presented which predicts the orientationally averaged, infrared spectra of individual mixed-composition particles or the average spectrum of collections of such particles. The model uses parameters extracted from sets of individual particle spectra of pure materials known to be in subject mixtures. The spectra of both calibrants and subject particles were recorded by trapping size-selected particles in the holes of plasmonic metal mesh. Calibrating data is presented for quartz, calcite, dolomite, three clays, gypsum, polyethylene, and living organic material (yeast cells). The individual particle spectra of these calibrants are averaged to account for crystal orientation effects, fit by a Mie theory model, and tabulated herein as dielectric functions of each component. The component dielectric functions are combined in this model with Bruggeman effective medium theory producing a spectral prediction for mixed-composition particles. The Mie-Bruggeman model was used to analyze the composition of dust from our lab air [K. E. Cilwa et al. J. Phys. Chem. C 2011, 115, 16910] based on the average spectrum of the dust particles. The model does a reasonable job of characterizing the dust in our laboratory air exhibiting promise for future applications. This work presents the model and illustrates potential; however, much more work will be required before its accuracy as a quantitative analytical method is established.
机译:提出了一个Mie-Bruggeman光谱模型,该模型可预测单个混合成分颗粒的方向平均红外光谱或此类颗粒集合的平均光谱。该模型使用从已知存在于主题混合物中的纯净材料的单个粒子光谱集中提取的参数。通过将尺寸选择的颗粒捕获在等离激元金属网孔中来记录校准物和目标颗粒的光谱。给出了石英,方解石,白云石,三种粘土,石膏,聚乙烯和活性有机材料(酵母细胞)的校准数据。将这些校准物的单个粒子光谱取平均以说明晶体取向效应,通过米氏理论模型进行拟合,并在此处制成表格,作为每个成分的介电函数。在该模型中,将成分介电函数与Bruggeman有效介质理论相结合,从而为混合成分的粒子产生光谱预测。 Mie-Bruggeman模型用于分析实验室空气中的灰尘成分[K. E.Cilwa等。 J.物理化学C 2011,115,16910]基于尘埃颗粒的平均光谱。该模型在表征我们实验室空气中的粉尘方面表现出了合理的作用,具有未来应用前景。这项工作提出了模型并说明了潜力。但是,在建立定量分析方法的准确性之前,还需要做更多的工作。

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