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Molecular modeling of aqueous electrolytes at interfaces: Effects of long-range dispersion forces and of ionic charge rescaling

机译:界面含水电解质的分子建模:远程分散力和离子电荷重构的影响

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Molecular dynamics simulations of aqueous electrolytes generally rely on empirical force fields, combining dispersion interactions-described by a truncated Lennard-Jones (LJ) potential-and electrostatic interactions-described by a Coulomb potential computed with a long-range solver. Recently, force fields using rescaled ionic charges [electronic continuum correction (ECC)], possibly complemented with rescaling of LJ parameters [ECC rescaled (ECCR)], have shown promising results in bulk, but their performance at interfaces has been less explored. Here, we started by exploring the impact of the LJ potential truncation on the surface tension of a sodium chloride aqueous solution. We show a discrepancy between the numerical predictions for truncated LJ interactions with a large cutoff and for untruncated LJ interactions computed with a long-range solver, which can bias comparison of force field predictions with experiments. Using a long-range solver for LJ interactions, we then show that an ionic charge rescaling factor chosen to correct long-range electrostatic interactions in bulk accurately describes image charge repulsion at the liquid-vapor interface, and the rescaling of LJ parameters in ECCR models-aimed at capturing local ion-ion and ion-water interactions in bulk- describes well the formation of an ionic double layer at the liquid-vapor interface. Overall, these results suggest that the molecular modeling of aqueous electrolytes at interfaces would benefit from using long-range solvers for dispersion forces and from using ECCR models, where the charge rescaling factor should be chosen to correct long-range electrostatic interactions.
机译:水性电解质的分子动力学模拟通常依赖于经验力场,通过用具有长范围求解器计算的库仑电位描述的截断的Lennard-jones(Lj)电位和静电相互作用来组合分散相互作用。最近,使用重新定位的IONIC电荷[电子连续体校正(ECC)]的力领域,可能与LJ参数重新分配进行了补充[ECC重新搜索(ECCR)],已经批量批量出现了有希望的结果,但它们在界面处的性能不太探索。在这里,我们开始通过探索LJ电位截断对氯化钠水溶液的表面张力的影响。我们在与大型截止的截断LJ交互的数值预测和具有远程求解器计算的未转朗的LJ交互之间的数值预测之间显示出差异,这可以与实验相比,这可以偏离力场预测的比较。使用远程求解器进行LJ交互,我们表明,选择批量的离子电荷重新分配因子,以精确地描述液 - 蒸汽接口处的图像电荷排斥,以及ECCR模型中的LJ参数的重新扫描在捕获局部离子离子和离子水相互作用时进行 - 描述液 - 蒸汽界面处的离子双层的形成。总体而言,这些结果表明,界面中的水性电解质的分子建模将受益于使用远程溶剂来分散力和使用ECCR模型,其中应选择电荷重构因子以校正远程静态相互作用。

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