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具有表面电导、任意zeta电位以及在静电场中双层厚度的球形胶体颗粒浓悬浮液的动电现象。

Electrokinetics of concentrated suspensions of spherical colloidal particles with surface conductance, arbitrary zeta potential, and double-layer thickness in static electric fields.

作者信息

Carrique F, Arroyo F J, Delgado A V

机构信息

Departamento de Física Aplicada I, Facultad de Ciencias, Universidad de Málaga, Málaga, 29071, Spain.

出版信息

J Colloid Interface Sci. 2002 Aug 1;252(1):126-37. doi: 10.1006/jcis.2002.8418.

Abstract

In this paper the electrophoretic mobility and the electrical conductivity of concentrated suspensions of spherical colloidal particles have been numerically studied under arbitrary conditions including zeta potential, particle volume fraction, double-layer thickness (overlapping of double layers is allowed), surface conductance by a dynamic Stern layer model (DSL), and ionic properties of the solution. We present an extensive set of numerical data of both the electrophoretic mobility and the electrical conductivity versus zeta potential and particle volume fraction, for different electrolyte concentrations. The treatment is based on the use of a cell model to account for hydrodynamic and electrical interactions between particles. Other theoretical approaches have also been considered for comparison. Furthermore, the study includes the possibility of adsorption and lateral motion of ions in the inner region of the double layers (DSL model), according to the theory developed by C. S. Mangelsdorf and L. R. White (J. Chem. Soc. Faraday Trans.86, 2859 (1990)). The results show that the correct limiting cases of low zeta potentials and thin double layers for dilute suspensions are fulfilled by our conductivity formula. Moreover, the presence of a DSL causes very important changes, even dramatic, on the values of both the electrophoretic mobility and the electrical conductivity for a great range of volume fractions and zeta potentials, specially when double layers of adjacent cells overlap, in comparison with the standard case (no Stern layer present). It can be concluded that in general the presence of a dynamic Stern layer causes the electrophoretic mobility to decrease and the electrical conductivity to increase in comparison with the standard case for every volume fraction, zeta potential, and double-layer thickness.

摘要

本文采用动态斯特恩层模型(DSL),在包括zeta电位、颗粒体积分数、双层厚度(允许双层重叠)、表面电导以及溶液离子性质等任意条件下,对球形胶体颗粒浓悬浮液的电泳迁移率和电导率进行了数值研究。我们给出了不同电解质浓度下,电泳迁移率和电导率随zeta电位和颗粒体积分数变化的大量数值数据。该处理基于使用单元模型来考虑颗粒间的流体动力学和电相互作用。为作比较,还考虑了其他理论方法。此外,根据C. S. Mangelsdorf和L. R. White(《化学会志,法拉第会刊》86, 2859 (1990))提出的理论,该研究包括了双层内部区域(DSL模型)中离子吸附和横向运动的可能性。结果表明,我们的电导率公式满足稀悬浮液低zeta电位和薄双层的正确极限情况。此外,与标准情况(不存在斯特恩层)相比,DSL的存在会使电泳迁移率和电导率的值发生非常重要的变化,甚至是显著变化,特别是当相邻单元的双层重叠时,在很大的体积分数和zeta电位范围内都是如此。可以得出结论,一般来说,与标准情况相比,对于每一个体积分数、zeta电位和双层厚度,动态斯特恩层的存在都会导致电泳迁移率降低,电导率增加。

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