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Calculation of the Electrophoretic Mobility of a Particle Bearing Bound Polyelectrolyte Using the Nonlinear Poisson-Boltzmann Equation

机译:使用非线性Poisson-Boltzmann方程计算带颗粒结合聚电解质的电泳迁移率

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摘要

A numerical method for determining the electrophoretic mobility of a polyelectrolyte-coated particle is presented. The particle surface is modeled as having a permeable layer of polyelectrolyte molecules anchored to its surface. Fluid flow within the polyelectrolyte layer is subject to Stokes drag arising from the polyelectrolyte segments. The method allows arbitrary distribution of polymer segments and charge density normal to the surface to be used. The hydrodynamic plane of shear may also be varied. The potential profile is determined by a numerical solution to the nonlinearized Poisson-Boltzmann equation. The potential profile is then used in a numerical solution to the Navier-Stokes equation to give the required mobility. The use of the nonlinearized Poisson-Boltzmann equation extends the results to higher charge density/lower ionic strength conditions than previous treatments. The surface potentials and mobilities for three limiting charge distributions are compared for both the linear and nonlinear treatments to delimit the range of validity of the linear treatment. The utility of the numerical, nonlinear treatment is demonstrated by an improved fit to the electrophoretic mobility of human erythrocytes as a function of ionic strength in the range 10 to 150 mM.
机译:提出了一种确定聚电解质包覆颗粒电泳迁移率的数值方法。颗粒表面被建模为具有锚定在其表面的聚电解质分子的可渗透层。聚电解质层内的流体流动受到由聚电解质链段引起的斯托克斯阻力的影响。该方法允许聚合物链段的任意分布和垂直于要使用的表面的电荷密度。剪切的流体动力平面也可以变化。电位分布通过非线性泊松方程的数值解确定。然后将电势轮廓用于Navier-Stokes方程的数值解中,以提供所需的迁移率。非线性泊松-玻尔兹曼方程的使用将结果扩展到比以前的处理更高的电荷密度/更低的离子强度条件。比较了线性处理和非线性处理的三种极限电荷分布的表面电势和迁移率,以界定线性处理的有效性范围。数值非线性处理的实用性通过对人类红细胞的电泳迁移率的改进拟合来证明,该电泳迁移率是离子强度的函数,范围为10至150 mM。

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