Features of Cross-Correlation Spectroscopy for the Study of Liquid Dispersed Media

Z. Zabalueva, O. Kotov
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Abstract

The method of laser correlation spectroscopy is currently widely used in a number of branches of science and medicine for analysis of variance in liquid media, such as waste water samples, protein solutions, suspensions, or emulsions. Since the classical method of laser correlation spectroscopy gives reliable results only for dilute, non-turbid samples, for turbid media, its modification, the cross-correlation method, is used. The paper describes the principle of operation of the previously developed cross-correlation spectrometer. On the basis of a series of measurements carried out on this spectrometer for various aqueous monodisperse suspensions with particles of known size, the distance was chosen at which the light scattered from the sample should be recorded in order to ensure the maximum signal quality with minimum errors. To demonstrate the results of the device operation, the numerical values of the particle size estimation by the methods of classical laser correlation spectroscopy and cross-correlation are given. The results obtained showed that, first, there is such a distance of scattering registration at which the signal-to-noise ratio of the optical signal has a maximum. Second, as the turbidity of the sample increases, the laser correlation spectroscopy method gives an ever greater underestimation of the calculated particle size, while the cross-correlation method is less sensitive to the concentration of scatterers. To reduce the spread of values obtained by the cross-correlation method, further refinement of the spectrometer is planned.
液体分散介质相互关联光谱研究的特点
激光相关光谱学方法目前广泛应用于许多科学和医学分支中,用于分析液体介质中的方差,例如废水样品,蛋白质溶液,悬浮液或乳剂。由于激光相关光谱的经典方法只能对稀释的、不浑浊的样品给出可靠的结果,对于浑浊的介质,它的改进,互相关法,被使用。本文介绍了先前研制的互相关光谱仪的工作原理。在该光谱仪对各种已知粒径的单分散水悬浮液进行一系列测量的基础上,选择了记录样品散射光的距离,以保证以最小的误差获得最大的信号质量。为了证明装置的工作结果,给出了用经典激光相关光谱法和互相关法估计颗粒尺寸的数值。结果表明:首先,在一定的散射配准距离处,光信号的信噪比达到最大值;其次,随着样品浊度的增加,激光相关光谱法对计算粒度的低估越来越大,而互相关法对散射体浓度的敏感性较低。为了减少互相关法得到的值的扩散,计划进一步改进光谱仪。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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