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Optimization of linear and branched alkane interactions with water to simulate hydrophobic hydration

机译:优化线性和支链烷烃与水的相互作用以模拟疏水水合

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Previous studies of simple gas hydration have demonstrated that the accuracy of molecular simulations at capturing the thermodynamic signatures of hydrophobic hydration is linked both to the fidelity of the water model at replicating the experimental liquid density at ambient pressure and an accounting of polarization interactions between the solute and water. We extend those studies to examine alkane hydration using the transferable potentials for phase equilibria united-atom model for linear and branched alkanes, developed to reproduce alkane phase behavior, and the TIP4P2005 model for water, which provides one of the best descriptions of liquid water for the available fixed-point charge models. Alkane sitewater oxygen Lennard-Jones cross interactions were optimized to reproduce the experimental alkane hydration free energies over a range of temperatures. The optimized model reproduces the hydration free energies of the fitted alkanes with a root mean square difference between simulation and experiment of 0.06 kcalmol over a wide temperature range, compared to 0.44 kcalmol for the parent model. The optimized model accurately reproduces the temperature dependence of hydrophobic hydration, as characterized by the hydration enthalpies, entropies, and heat capacities, as well as the pressure response, as characterized by partial molar volumes.
机译:以前对简单气体水化的研究表明,分子模拟在捕获疏水水化的热力学特征时的准确性与水模型在环境压力下复制实验液体密度时的保真度以及溶质之间的极化相互作用有关。和水。我们将这些研究扩展到使用直链和支链烷烃的相平衡联合原子模型的可转移势来研究烷烃水合,开发该模型以重现烷烃的相行为,而水的TIP4P2005模型则为液态水的最佳描述之一。可用的定点收费模型。优化烷烃中心水氧Lennard-Jones的交叉相互作用,以在一定温度范围内重现实验性烷烃水合自由能。优化的模型再现了拟合烷烃的水合自由能,在宽温度范围内,模拟和实验之间的均方根差为0.06 kcalmol,而母体模型为0.44 kcalmol。优化的模型准确地再现了疏水水合的温度依赖性,以水合焓,熵和热容为特征,以及压力响应以部分摩尔体积为特征。

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