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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Ab initio theoretical study of temperature and density dependence of molecular and thermodynamic properties of water in the entire fluid region: Autoionization processes
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Ab initio theoretical study of temperature and density dependence of molecular and thermodynamic properties of water in the entire fluid region: Autoionization processes

机译:从头开始对整个流体区域中水的分子和热力学性质的温度和密度依赖性的理论研究:自电离过程

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摘要

The temperature and density dependence of the molecular and thermodynamic properties of water is investigated theoretically by means of the ab initio electronic structure theory combined with the reference interaction site model method, so-called RISM-SCF. We consider the autoionization process (H2O + H2O reversible arrow H3O+ + OH-) by regarding H2O, H3O+, and OH- as "solute" molecules in an aqueous solution and evaluate molecular geometry, electronic structure, solvation Structure, and the ionic product of water (pK(w)) of these species as functions of thermodynamic conditions. In our previous paper, we calculated these properties by using essentially the same method in a wide range of density values (0.6-1.4 g/cm(3)). However, the calculation was limited at rather higher density (> 0.6 g/cm(3)) due to the difficulty of convergence, which is inherent to the hypernetted-chain (HNC) closure. The problem is overcome in this study by employing the Kovalenko-Hirata (KH) closure which hybridizes the HNC and the mean-spherical approximation (MSA). Here, we present the results for the thermodynamic range of densities from 0.025 to 1.0 g/cm(3) and for temperatures from 300 to 800 K including the supercritical point.
机译:通过从头算电子结构理论和参考相互作用位点模型方法(称为RISM-SCF),理论上研究了水的分子和热力学性质对温度和密度的依赖性。我们通过将H2O,H3O +和OH-视为水溶液中的“溶质”分子,来考虑自电离过程(H2O + H2O可逆箭头H3O + + OH-),并评估分子的几何形状,电子结构,溶剂化结构和这些物质的水(pK(w))是热力学条件的函数。在我们以前的论文中,我们通过在宽范围的密度值(0.6-1.4 g / cm(3))中使用基本相同的方法来计算这些属性。但是,由于收敛的困难,计算被限制在相当高的密度(> 0.6 g / cm(3))上,这是超网链(HNC)封闭所固有的。在这项研究中,通过使用Kovalenko-Hirata(KH)闭合解决了这一问题,该闭合将HNC和平均球面近似(MSA)混合在一起。在这里,我们介绍了密度从0.025到1.0 g / cm(3)的热力学范围以及300到800 K(包括超临界点)的温度的结果。

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