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Linear Extrapolation of the Analyte-Specific LightScattering and Fluorescence Depolarization in Turbid Samples

机译:特定分析物光的线性外推浑浊样品中的散射和荧光去极化

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摘要

Anisotropy and depolarization are two interconvertible parameters in fluorescence and light scattering spectroscopy that describe the polarization distribution of emitted and scattered photons generated with linearly polarized excitation light. Whereas anisotropy is more frequently used in fluorescence literature for studying association/dissociation of fluorophore-bearing reagents, depolarization is more popular in the light-scattering literature for investigating the effect of scatterers’ geometries and chemical compositions. Presented herein is a combined computational and experimental study of the scattering and fluorescence depolarization enhancement induced by light scattering in turbid samples. The most important finding is that sample light scattering and fluorescence depolarization increases linearly with sample light-scattering extinction. Therefore, one can extrapolate the analyte-specific scattering and fluorescence depolarization through linear curve fitting of the sample light scattering and fluorescence depolarization as a function of the sample concentration or the path length of the sampling cuvettes.An example application of this linear extrapolation method is demonstratedfor quantifying the fluorophore-specific fluorescence depolarizationand consequently its anisotropy for an aggregation-induced-emissionsample. This work should be important for a wide range of macromolecular,supramolecular, and nanoscale fluorescent materials that are oftenstrong light scatterers due to their large sizes.
机译:各向异性和去极化是荧光和光散射光谱中两个可相互转换的参数,它们描述了线性偏振激发光产生的发射和散射光子的偏振分布。各向异性在荧光文献中经常用于研究带有荧光团的试剂的缔合/解离,而去极化在光散射文献中更流行,用于研究散射体的几何形状和化学成分的影响。本文介绍了由混浊样品中的光散射引起的散射和荧光去极化增强的组合计算和实验研究。最重要的发现是样品光的散射和消光随样品光散射的消退而线性增加。因此,可以根据样品浓度或样品比色杯的光程,通过对样品光散射和荧光去极化的线性曲线拟合来推断分析物特异性散射和荧光去极化。演示了此线性外推方法的示例应用用于定量荧光团特异性荧光去极化因此,它对于聚集诱导发射的各向异性样品。这项工作对于各种大分子,通常是超分子和纳米级荧光材料由于其尺寸大,因此具有很强的光散射能力。

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