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Adapting SAFT-γ perturbation theory to site-based molecular dynamics simulation. III. Molecules with partial charges at bulk phases, confined geometries and interfaces

机译:将SAFT-γ扰动理论应用于基于位置的分子动力学模拟。三,在体相中具有部分电荷的分子,有限的几何形状和界面

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In Paper I [A. F. Ghobadi and J. R. Elliott, J. Chem. Phys. 139(23), 234104 (2013)], we showed that how a third-orderWeeks–Chandler–Anderson (WCA) Thermodynamic Perturbation Theory and molecular simulation can be integrated to characterize the repulsive and dispersive contributions to the Helmholtz free energy for realistic molecular conformations. To this end, we focused on n-alkanes to develop a theory for fused and soft chains. In Paper II [A. F. Ghobadi and J. R. Elliott, J. Chem. Phys. 141(2), 024708 (2014)], we adapted the classical Density Functional Theory and studied the microstructure of the realistic molecular fluids in confined geometries and vapor-liquid interfaces. We demonstrated that a detailed consistency between molecular simulation and theory can be achieved for both bulk and inhomogeneous phases. In this paper, we extend the methodology to molecules with partial charges such as carbon dioxide, water, 1-alkanols, nitriles, and ethers. We show that the electrostatic interactions can be captured via an effective association potential in the framework of Statistical Associating Fluid Theory (SAFT). Implementation of the resulting association contribution in assessing the properties of these molecules at confined geometries and interfaces presents satisfactory agreement with molecular simulation and experimental data. For example, the predicted surface tension deviates less than 4% comparing to full potential simulations. Also, the theory, referred to as SAFT-γ WCA, is able to reproduce the specific orientation of hydrophilic head and hydrophobic tail of 1-alkanols at the vapor-liquid interface of water.
机译:在论文一中[A. F.Ghobadi和J.R.Elliott,J.Chem。物理139(23),234104(2013)],我们证明了如何将三阶周-钱德勒-安德森(WCA)热力学扰动理论和分子模拟相结合,以表征对现实分子的亥姆霍兹自由能的排斥和分散作用构象。为此,我们专注于正构烷烃,以发展用于稠合和软链的理论。在论文二中[A. F.Ghobadi和J.R.Elliott,J.Chem。物理141(2),024708(2014)],我们采用了经典的密度泛函理论,并研究了在受限几何形状和气液界面中现实分子流体的微观结构。我们证明,对于本体相和非均相,分子模拟和理论之间都可以实现详细的一致性。在本文中,我们将方法学扩展到带有部分电荷的分子,例如二氧化碳,水,1-链烷醇,腈和醚。我们表明静电相互作用可以通过统计关联流体理论(SAFT)框架中的有效关联电位来捕获。在限制的几何形状和界面下评估这些分子的性质所产生的缔合贡献的实现,与分子模拟和实验数据呈现出令人满意的一致性。例如,与全势模拟相比,预测的表面张力偏差小于4%。同样,被称为SAFT-γWCA的理论也能够重现1-烷醇在水的气液界面处的亲水头和疏水尾的特定方向。

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