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Crystal lattice properties fully determine short-range interaction parameters for alkali and halide ions

机译:晶格特性完全决定了碱金属离子和卤离子的短程相互作用参数

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摘要

Accurate models of alkali and halide ions in aqueous solution are necessary for computer simulations of a broad variety of systems. Previous efforts to develop ion force fields have generally focused on reproducing experimental measurements of aqueous solution properties such as hydration free energies and ion-water distribution functions. This dependency limits transferability of the resulting parameters because of the variety and known limitations of water models. We present a solvent-independent approach to calibrating ion parameters based exclusively on crystal lattice properties. Our procedure relies on minimization of lattice sums to calculate lattice energies and interionic distances instead of equilibrium ensemble simulations of dense fluids. The gain in computational efficiency enables simultaneous optimization of all parameters for Li+, Na+, K+, Rb+, Cs+, F-, Cl-, Br-, and I- subject to constraints that enforce consistency with periodic table trends. We demonstrate the method by presenting lattice-derived parameters for the primitive model and the Lennard-Jones model with Lorentz-Berthelot mixing rules. The resulting parameters successfully reproduce the lattice properties used to derive them and are free from the influence of any water model. To assess the transferability of the Lennard-Jones parameters to aqueous systems, we used them to estimate hydration free energies and found that the results were in quantitative agreement with experimentally measured values. These lattice-derived parameters are applicable in simulations where coupling of ion parameters to a particular solvent model is undesirable. The simplicity and low computational demands of the calibration procedure make it suitable for parametrization of crystallizable ions in a variety of force fields.
机译:水溶液中碱金属和卤化物离子的准确模型对于各种系统的计算机仿真是必不可少的。以前开发离子力场的努力通常集中在重现水溶液性质(如水合自由能和离子水分布函数)的实验测量值。由于水模型的多样性和已知限制,这种依赖性限制了所得参数的可传递性。我们提出了一种独立于溶剂的方法,仅基于晶格特性来校准离子参数。我们的程序依靠最小化晶格和来计算晶格能量和离子间距,而不是稠密流体的平衡集成模拟。计算效率的提高使Li +,Na +,K +,Rb +,Cs +,F-,Cl-,Br-和I-的所有参数得以同时优化,但要遵守与元素周期表趋势保持一致的约束。我们通过提供具有Lorentz-Berthelot混合规则的原始模型和Lennard-Jones模型的晶格派生参数来演示该方法。所得参数成功地再现了用于推导它们的晶格特性,并且不受任何水模型的影响。为了评估Lennard-Jones参数在水系统中的可传递性,我们使用它们来估计水合自由能,并发现结果与实验测量值在定量上吻合。这些晶格派生的参数适用于不希望将离子参数耦合到特定溶剂模型的仿真。校准程序的简单性和低计算量要求使其适用于各种力场中可结晶离子的参数化。

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