Orea Pedro, López-Lemus Jorge, Alejandre José
Ingeniería Molecular, Instituto Mexicano del Petróleo, México DF, México.
J Chem Phys. 2005 Sep 15;123(11):114702. doi: 10.1063/1.2018640.
The simulation results of surface tension at the liquid-vapor interface are presented for fluids interacting with Lennard Jones and square-well potentials. From the simulation of liquids we have reported [M. González-Melchor et al., J. Chem. Phys. 122, 4503 (2005)] that the components of pressure tensor in parallelepiped boxes are not the same when periodic boundary conditions and small transversal areas are used. This fact creates an artificial oscillatory stress anisotropy in the system with even negative values. By doing direct simulations of interfaces we show in this work that surface tension has also an oscillatory decay at small surface areas; this behavior is opposite to the monotonic decay reported previously for the Lennard Jones fluid. It is shown that for small surface areas, the surface tension of the square-well potential artificially takes negative values and even increases with temperature. The calculated surface tension using a direct simulation of interfaces might have two contributions: one from finite-size effects of interfacial areas due to box geometry and another from the interface. Thus, it is difficult to evaluate the true surface tension of an interface when small surface areas are used. Care has to be taken to use the direct simulation method of interfaces to evaluate the predicted surface tension as a function of interfacial area from capillary-wave theory. The oscillations of surface tension decay faster at temperatures close to the critical point. It is also discussed that a surface area does not show any important effect on coexisting densities, making this method reliable to calculate bulk coexisting properties using small systems.
给出了与Lennard-Jones势和方阱势相互作用的流体在液-气界面处表面张力的模拟结果。根据我们之前报道的液体模拟结果[M. González-Melchor等人,《化学物理杂志》122, 4503 (2005)],当使用周期性边界条件和小横向面积时,平行六面体盒子中压力张量的分量并不相同。这一事实在系统中产生了人为的振荡应力各向异性,甚至出现负值。通过对界面进行直接模拟,我们在这项工作中表明,在小表面积时表面张力也有振荡衰减;这种行为与之前报道的Lennard-Jones流体的单调衰减相反。结果表明,对于小表面积,方阱势的表面张力会人为地取负值,甚至随温度升高。使用界面直接模拟计算得到的表面张力可能有两种贡献:一种来自由于盒子几何形状导致的界面面积的有限尺寸效应,另一种来自界面。因此,当使用小表面积时,很难评估界面的真实表面张力。必须小心使用界面直接模拟方法,根据毛细波理论评估预测的表面张力作为界面面积的函数。在接近临界点的温度下,表面张力的振荡衰减更快。还讨论了表面积对共存密度没有任何重要影响,这使得该方法在使用小系统计算体相共存性质时是可靠的。