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Electrostatic potential and counterion partition between flat and spherical interfaces

机译:平板和球形界面之间的静电电位和抗衡离子分区

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While the electrostatic potential and the counterion distribution produced by interfaces with idealized geometries can be well-described by analytical models, the same does not hold true for the interaction between surfaces with different and arbitrary geometries. Besides, the geometry of a charged interface may also affect the counterion adsorption, potentially modulating the electrostatic potential and the solvent organization close to the interfaces, demanding molecular details to be taken into account. The complex electrostatics of a sodium dodecyl sulfate micelle in the presence of monolayers of the same surfactant at the water-vapor interface was assessed by a set of molecular dynamics simulations. The electrostatic potential was evaluated numerically, and its total magnitude was decomposed into contributions arising from each species comprising the system. The counterion adsorption was stronger at the flat interfaces due to the more favorable formation of sodium bridges, where the same counterion is bounded to two or more anionic heads, while water reorientation was more pronounced near the micelle. These opposing effects counteracted each other so that the overall electrostatic potential changes were similar for both interfaces. The increase in the counterion concentration between the micelle and the interface originates a double layer mediated repulsion amounting to a free energy barrier of at least 14 kJ/mol, preventing the micelle to get closer to the monolayers. It is noteworthy that the hydrophobic regions had electrostatic potential contributions as large as those arising from the hydrophilic regions, mostly due to the orderly orientation of the terminal methyl groups. Published under license by AIP Publishing.
机译:虽然可以通过分析模型良好地描述由具有理想性几何形状的接口产生的静电电位和抗衡离子分布,但是对于具有不同和任意几何形状的表面之间的相互作用,相同的情况也不存在。此外,带电界面的几何形状也可能影响抗衡离子吸附,潜在地调节静电电位和靠近界面的溶剂组织,要求考虑分子细节。通过一组分子动力学模拟评估在水蒸气界面在水蒸气界面的同一表面活性剂的单层存在下的十二烷基硫酸钠胶束的复杂静电。数值评价静电电位,其总幅度分解成来自包含该系统的每个物种引起的贡献。由于钠桥的形成更有利,抗衡离子吸附在扁平界面处,其中相同的抗衡离子界定为两个或更多个阴离子头,而水重新定位在胶束附近更加明显。这些相反的效果互相抵消,使整体静电电位变化对于两个接口相似。胶束和界面之间的抗衡离子浓度的增加来源于两层介导的排斥,其介导的排斥量为至少14kJ / mol的自由能屏障,防止胶束更接近单层。值得注意的是,疏水区具有与来自亲水区域引起的静电势贡献,主要是由于末端甲基的有序取向。通过AIP发布在许可证下发布。

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