首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular Simulation of Aqueous Electrolyte Solubility. 2. Osmotic Ensemble Monte Carlo Methodology for Free Energy and Solubility Calculations and Application to NaCl
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Molecular Simulation of Aqueous Electrolyte Solubility. 2. Osmotic Ensemble Monte Carlo Methodology for Free Energy and Solubility Calculations and Application to NaCl

机译:水电解质溶解度的分子模拟。 2.用于自由能和溶解度计算的渗透集成蒙特卡罗方法及其在NaCl中的应用

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We present a new and computationally efficient methodology using osmotic ensemble Monte Carlo (OEMC) simulation to calculate chemical potential-concentration curves and the solubility of aqueous electrolytes. The method avoids calculations for the solid phase, incorporating readily available data from thermochemical tables that are based on well defined reference states. It performs simulations of the aqueous solution at a fixed number of water molecules, pressure, temperature, and specified overall electrolyte chemical potential. Insertion/deletion of ions to/from the system is implemented using fractional ions, which are coupled to the system via a coupling parameter X that varies between 0 (no interaction between the fractional ions and the other particles in the system) and 1 (full interaction between the fractional ions and the other particles of the system). Transitions between 1-states are accepted with a probability following from the osmotic ensemble partition function. Biasing weights associated with the A-states are used in order to efficiently realize transitions between them; these are determined by means of the Wang-Landau method. We also propose a novel scaling procedure for λ, which can be used for both nonpolarizable and polarizable models of aqueous electrolyte systems. The approach is readily extended to involve other solvents, multiple electrolytes, and species complexation reactions. The method is illustrated for NaCl, using SPC/E water and several force field models for NaCl from the literature, and the results are compared with experiment at ambient conditions. Good agreement is obtained for the chemical potential-concentration curve and the solubility prediction is reasonable. Future improvements to the predictions will require improved force field models.
机译:我们提出了一种新的计算有效的方法,使用了渗透合奏蒙特卡洛(OEMC)模拟来计算化学势-浓度曲线和水性电解质的溶解度。该方法避免了对固相的计算,而是结合了基于明确定义的参考状态的热化学表中容易获得的数据。它以固定数量的水分子,压力,温度和指定的总电解质化学势来模拟水溶液。使用分数离子实现离子向系统的插入/删除,这些离子通过耦合参数X耦合到系统,耦合参数X在0(分数离子与系统中其他粒子之间没有相互作用)和1(完全)之间变化。分数离子与系统其他粒子之间的相互作用)。 1-状态之间的转换以一定的概率被接受,随后是渗透性整体分配函数。为了有效地实现它们之间的转换,使用了与A状态相关的偏置权重。这些是通过Wang-Landau方法确定的。我们还为λ提出了一种新颖的缩放程序,该程序可用于水性电解质系统的不可极化和可极化模型。该方法很容易扩展到涉及其他溶剂,多种电解质和物种络合反应。用SPC / E水和有关NaCl的几种力场模型对NaCl进行了说明,并将结果与​​环境条件下的实验进行了比较。化学势-浓度曲线吻合良好,溶解度预测合理。未来对预测的改进将需要改进的力场模型。

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