Université de Lorraine, CNRS, Laboratoire Interdisciplinaire des Environnements Continentaux (LIEC), UMR7360, Vandoeuvre-lès-Nancy F-54500, France.
Université de Lorraine, CNRS, Laboratoire Interdisciplinaire des Environnements Continentaux (LIEC), UMR7360, Vandoeuvre-lès-Nancy F-54500, France.
J Colloid Interface Sci. 2023 Jul 15;642:154-168. doi: 10.1016/j.jcis.2023.03.027. Epub 2023 Mar 25.
Electrostatics of soft (ion-permeable) (bio)particles (e.g. microorganisms, core/shell colloids) in aqueous electrolytes is commonly formulated by the mean-field Poisson-Boltzmann theory and integration of the charge contributions from electrolyte ions and soft material. However, the effects connected to the size of the electrolyte ions and that of the structural charges carried by the particle, to dielectric decrement and ion-ion correlations on soft interface electrostatics have been so far considered at the margin, despite the limits of the Gouy theory for condensed and/or multivalent electrolytes.
Accordingly, we modify herein the Poisson-Boltzmann theory for core/shell (bio)interfaces to include the aforementioned molecular effects considered separately or concomitantly. The formalism is applicable for poorly to highly charged particles in the thin electric double layer regime and to unsymmetrical multivalent electrolytes.
Computational examples of practical interests are discussed with emphasis on how each considered molecular effect or combination thereof affects the interfacial potential distribution depending on size and valence of cations and anions, size of particle charges, length scale of ionic correlations and shell-to-Debye layer thickness ratio. The origins of here-evidenced pseudo-harmonic potential profile and ion size-dependent screening of core/shell particle charges are detailed. In addition, the existence and magnitude of the Donnan potential when reached in the shell layer are shown to depend on the excluded volumes of the electrolyte ions.
水溶液中的软(离子可渗透)(生物)颗粒(例如微生物、核/壳胶体)的静电特性通常通过平均场泊松-玻尔兹曼理论和电解质离子与软物质的电荷贡献积分来描述。然而,到目前为止,与电解质离子的大小以及颗粒所携带的结构电荷、介电损耗和软界面静电学中的离子-离子相关性相关的影响仅被考虑在边缘,尽管在凝聚态和/或多价电解质中,古伊理论存在局限性。
因此,我们在此修改了核/壳(生物)界面的泊松-玻尔兹曼理论,以分别或同时包含上述分子效应。该形式适用于在薄电双层区带中带少量至大量电荷的颗粒,以及不对称的多价电解质。
讨论了具有实际意义的计算实例,重点讨论了每个考虑的分子效应或其组合如何根据阳离子和阴离子的大小和价数、颗粒电荷的大小、离子相关的长度尺度以及壳层到德拜层厚度比,影响界面势分布。详细说明了此处证明的拟谐电势分布和核/壳颗粒电荷的离子尺寸依赖性屏蔽的起源。此外,当在壳层中达到时,唐南电势的存在和大小被证明取决于电解质离子的排斥体积。