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Predicting solvation free energies and thermodynamics in polar solvents and mixtures using a solvation-layer interface condition

机译:使用溶剂化层界面条件预测极性溶剂和混合物中的溶剂化自由能和热力学

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摘要

We demonstrate that with two small modifications, the popular dielectric continuum model is capable of predicting, with high accuracy, ion solvation thermodynamics (Gibbs free energies, entropies, and heat capacities) in numerous polar solvents. We are also able to predict ion solvation free energies in water–co-solvent mixtures over available concentration series. The first modification to the classical dielectric Poisson model is a perturbation of the macroscopic dielectric-flux interface condition at the solute–solvent interface: we add a nonlinear function of the local electric field, giving what we have called a solvation-layer interface condition (SLIC). The second modification is including the microscopic interface potential (static potential) in our model. We show that the resulting model exhibits high accuracy without the need for fitting solute atom radii in a state-dependent fashion. Compared to experimental results in nine water–co-solvent mixtures, SLIC predicts transfer free energies to within 2.5 kJ/mol. The co-solvents include both protic and aprotic species, as well as biologically relevant denaturants such as urea and dimethylformamide. Furthermore, our results indicate that the interface potential is essential to reproduce entropies and heat capacities. These and previous tests of the SLIC model indicate that it is a promising dielectric continuum model for accurate predictions in a wide range of conditions.
机译:我们证明,通过两个小的修改,流行的介电连续体模型能够以高精度预测多种极性溶剂中的离子溶剂化热力学(吉布斯自由能,熵和热容)。我们还能够预测在可用浓度范围内的水-共溶剂混合物中的离子溶剂化自由能。经典介电泊松模型的第一个修改是在溶质-溶剂界面处对宏观介电通量界面条件的扰动:我们添加了局部电场的非线性函数,给出了我们所说的溶剂化层界面条件( SLIC)。第二个修改是在我们的模型中包括微观界面电势(静态电势)。我们表明,所得模型显示出高精度,而无需以状态依赖的方式拟合溶质原子半径。与9种水-共溶剂混合物的实验结果相比,SLIC预测转移自由能在2.5 kJ / mol之内。助溶剂包括质子和非质子物质,以及生物学上相关的变性剂,例如尿素和二甲基甲酰胺。此外,我们的结果表明,界面电势对于再生熵和热容量至关重要。 SLIC模型的这些和以前的测试表明,它是一种有前途的介电连续体模型,可以在各种条件下进行准确的预测。

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