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刚性线性 Lennard-Jones 链的汽液界面性质。

Vapor-liquid interfacial properties of rigid-linear Lennard-Jones chains.

机构信息

Departamento de Física Aplicada, Universidad de Huelva, 21071, Huelva, Spain.

出版信息

J Chem Phys. 2012 Aug 28;137(8):084706. doi: 10.1063/1.4746120.

Abstract

We have obtained the interfacial properties of short rigid-linear chains formed from tangentially bonded Lennard-Jones monomeric units from direct simulation of the vapour-liquid interface. The full long-range tails of the potential are accounted for by means of an improved version of the inhomogeneous long-range corrections of Janeček [J. Phys. Chem. B 110, 6264-6269 (2006)] proposed recently by MacDowell and Blas [J. Chem. Phys. 131, 074705 (2009)] valid for spherical as well as for rigid and flexible molecular systems. Three different model systems comprising of 3, 4, and 5 monomers per molecule are considered. The simulations are performed in the canonical ensemble, and the vapor-liquid interfacial tension is evaluated using the test-area method. In addition to the surface tension, we also obtain density profiles, coexistence densities, critical temperature and density, and interfacial thickness as functions of temperature, paying particular attention to the effect of the chain length and rigidity on these properties. According to our results, the main effect of increasing the chain length (at fixed temperature) is to sharpen the vapor-liquid interface and to increase the width of the biphasic coexistence region. As a result, the interfacial thickness decreases and the surface tension increases as the molecular chains get longer. The surface tension has been scaled by critical properties and represented as a function of the difference between coexistence densities relative to the critical density.

摘要

我们通过对蒸气-液体界面的直接模拟,获得了由切向键合 Lennard-Jones 单体单元形成的短刚性线性链的界面性质。通过最近由 MacDowell 和 Blas [J. Chem. Phys. 131, 074705 (2009)] 提出的改进型不均匀长程修正(Janeček [J. Phys. Chem. B 110, 6264-6269 (2006)] 对势能的全远程尾部进行了计算,该修正对球形以及刚性和柔性分子系统都有效。考虑了三个不同的模型系统,每个分子包含 3、4 和 5 个单体。模拟在正则系综中进行,使用测试面积法评估蒸气-液体界面张力。除了表面张力,我们还获得了密度分布、共存密度、临界温度和密度以及作为温度函数的界面厚度,特别关注链长和刚性对这些性质的影响。根据我们的结果,增加链长(在固定温度下)的主要影响是使蒸气-液体界面变尖锐,并增加双相共存区域的宽度。因此,随着分子链的增长,界面厚度减小,表面张力增大。表面张力已按临界性质进行了缩放,并表示为相对于临界密度的共存密度差的函数。

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