E. K. Alidzhanov, S. N. Letuta, Yu. D. Lantukh, D. A. Razdobreev
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Monitoring of Aggregation Kinetics of Colloidal Systems by Light Scattering Methods
An original methodology is discussed for studying the aggregation kinetics of colloidal solutions. The methodology is based on the joint application of dynamic and static light scattering methods. The proposed methodology is theoretically justified by the concept of fractal dimension and scaling. Its experimental implementation is carried out using the example of colloidal gold solution aggregation initiated by a change in the ionic strength of the solution. The fractal dimension of Au clusters is determined from the angular and kinetic dependences of static light scattering. The hydrodynamic radii of the clusters are determined by the dynamic light scattering method. Based on the experimental results and a constructed model dependence of light scattering intensity on the sizes of clusters, a kinetic dependence is plotted for the concentration of Au clusters and the rate of their aggregation is estimated. The proposed method can be used to study the aggregation kinetics of fractal clusters in various colloidal systems.
期刊介绍:
Colloid Journal (Kolloidnyi Zhurnal) is the only journal in Russia that publishes the results of research in the area of chemical science dealing with the disperse state of matter and surface phenomena in disperse systems. The journal covers experimental and theoretical works on a great variety of colloid and surface phenomena: the structure and properties of interfaces; adsorption phenomena and structure of adsorption layers of surfactants; capillary phenomena; wetting films; wetting and spreading; and detergency. The formation of colloid systems, their molecular-kinetic and optical properties, surface forces, interaction of colloidal particles, stabilization, and criteria of stability loss of different disperse systems (lyosols and aerosols, suspensions, emulsions, foams, and micellar systems) are also topics of the journal. Colloid Journal also includes the phenomena of electro- and diffusiophoresis, electro- and thermoosmosis, and capillary and reverse osmosis, i.e., phenomena dealing with the existence of diffusion layers of molecules and ions in the vicinity of the interface.