Department of Chemistry, Northwestern University, Evanston, Illinois 60208, USA.
J Chem Phys. 2011 Aug 7;135(5):054701. doi: 10.1063/1.3622046.
The structure of the electric double layer of charged nanoparticles and colloids in monovalent salts is crucial to determine their thermodynamics, solubility, and polyion adsorption. In this work, we explore the double layer structure and the possibility of charge reversal in relation to the size of both counterions and coions. We examine systems with various size-ratios between counterions and coions (ion size asymmetries) as well as different total ion volume fractions. Using Monte Carlo simulations and integral equations of a primitive-model electric double layer, we determine the highest charge neutralization and electrostatic screening near the electrified surface. Specifically, for two binary monovalent electrolytes with the same counterion properties but differing only in the coion's size surrounding a charged nanoparticle, the one with largest coion size is found to have the largest charge neutralization and screening. That is, in size-asymmetric double layers with a given counterion's size the excluded volume of the coions dictates the adsorption of the ionic charge close to the colloidal surface for monovalent salts. Furthermore, we demonstrate that charge reversal can occur at low surface charge densities, given a large enough total ion concentration, for systems of monovalent salts in a wide range of ion size asymmetries. In addition, we find a non-monotonic behavior for the corresponding maximum charge reversal, as a function of the colloidal bare charge. We also find that the reversal effect disappears for binary salts with large-size counterions and small-size coions at high surface charge densities. Lastly, we observe a good agreement between results from both Monte Carlo simulations and the integral equation theory across different colloidal charge densities and 1:1-electrolytes with different ion sizes.
带电纳米粒子和胶体在单价盐中的双电层结构对于确定其热力学、溶解度和多离子吸附至关重要。在这项工作中,我们研究了双电层结构以及与抗衡离子和共离子大小相关的电荷反转的可能性。我们研究了具有不同抗衡离子与共离子大小比(离子尺寸不对称性)以及不同总离子体积分数的体系。我们使用蒙特卡罗模拟和原始模型电双层的积分方程,确定了靠近带电表面的最高电荷中和和静电屏蔽。具体来说,对于具有相同抗衡离子特性但仅在围绕带电纳米粒子的共离子尺寸上有所不同的两种二元单价电解质,发现具有最大共离子尺寸的一种具有最大的电荷中和和屏蔽。也就是说,在具有给定抗衡离子尺寸的尺寸不对称双层中,共离子的排斥体积决定了单价盐中靠近胶体表面的离子电荷的吸附。此外,我们证明,在给定总离子浓度足够大的情况下,对于单价盐的各种离子尺寸不对称体系,在低表面电荷密度下也可以发生电荷反转。此外,我们发现对应于最大电荷反转的非单调行为,作为胶体裸电荷的函数。我们还发现,对于大尺寸抗衡离子和小尺寸共离子的二元盐,在高表面电荷密度下,反转效应消失。最后,我们观察到不同胶体电荷密度和具有不同离子尺寸的 1:1 电解质的蒙特卡罗模拟和积分方程理论之间的结果具有良好的一致性。