首页> 外文期刊>Journal of chemical theory and computation: JCTC >Chemical Potentials, Activity Coefficients, and Solubility in Aqueous NaCl Solutions: Prediction by Polarizable Force Fields
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Chemical Potentials, Activity Coefficients, and Solubility in Aqueous NaCl Solutions: Prediction by Polarizable Force Fields

机译:NaCl水溶液中的化学势,活度系数和溶解度:极化力场的预测

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We describe a computationally efficient molecular simulation methodology for calculating the concentration dependence of the chemical potentials of both solute and solvent in aqueous electrolyte solutions, based on simulations of the salt chemical potential alone. We use our approach to study the predictions for aqueous NaCl solutions at ambient conditions of these properties by the recently developed polarizable force fields (FFs) AH/BK3 of Kiss and Baranyai (J. Chem. Phys. 2013, 138, 204507) and AH/SWM4-DP of Lamoureux and Roux (J. Phys. Chem. B 2006, 110, 3308-3322) and by the nonpolarizable JC FF of Joung and Cheatham tailored to SPC/E water (J. Phys. Chem. B 2008, 112, 9020-9041). We also consider their predictions of the concentration dependence of the electrolyte activity coefficient, the crystalline solid chemical potential, the electrolyte solubility, and the solution specific volume. We first highlight the disagreement in the literature concerning calculations of solubility by means of molecular simulation in the case of the JC FF and provide strong evidence of the correctness of our methodology based on recent independently obtained results for this important test case. We then compare the predictions of the three FFs with each other and with experiment and draw conclusions concerning their relative merits, with particular emphasis on the salt chemical potential and activity coefficient vs concentration curves and their derivatives. The latter curves have only previously been available from KirkwoodBuff integrals, which require approximate numerical integrations over system pair correlation functions at each concentration. Unlike the case of the other FFs, the AH/BK3 curves are nearly parallel to the corresponding experimental curves at moderate and higher concentrations. This leads to an excellent prediction of the water chemical potential via the GibbsDuhem equation and enables the activity coefficient curve to be brought into excellent agreement with experiment by incorporating an appropriate value of the standard state chemical potential in the Henry Law convention.
机译:我们仅基于盐化学势的模拟,描述了一种计算有效的分子模拟方法,用于计算电解质水溶液中溶质和溶剂的化学势的浓度依赖性。我们使用我们的方法,通过最近开发的Kiss和Baranyai的极化力场(FFs)AH / BK3(J. Chem。Phys。2013,138,204507)和AH研究在环境条件下具有这些特性的NaCl水溶液的预测。 Lamoureux和Roux的/ SWM4-DP(J. Phys。Chem。B 2006,110,3308-3322)以及Joung和Cheatham的非极化JC FF专为SPC / E水量身定制(J. Phys。Chem。B 2008, 112,9020-9041)。我们还考虑了他们对电解质活度系数,结晶固体化学势,电解质溶解度和溶液比容的浓度依赖性的预测。我们首先强调文献中关于在JC FF情况下通过分子模拟进行溶解度计算的分歧,并基于该重要测试案例的近期独立获得的结果,为我们的方法的正确性提供了有力的证据。然后,我们将三个FF的预测相互比较,并与实验进行比较,得出关于它们的相对优点的结论,尤其着重于盐化学势和活度系数与浓度的关系曲线及其衍生物。后面的曲线以前只能从KirkwoodBuff积分中获得,这需要在每个浓度下通过系统对相关函数进行近似的数值积分。与其他FF不同,AH / BK3曲线在中等和较高浓度下几乎与相应的实验曲线平行。这可以通过GibbsDuhem方程很好地预测水的化学势,并且通过将适当的标准状态化学势值纳入亨利法则,可以使活度系数曲线与实验极佳地吻合。

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