Mountain Raymond D
Chemical and Biochemical Reference Data Division, National Institute of Standards and Technology, Gaithersburg, Maryland 20899-8320, USA.
J Phys Chem B. 2009 Jan 15;113(2):482-6. doi: 10.1021/jp8012514.
A set of molecular dynamics simulations of three members of the TIP4P model family for water (TIP4P, TIP4P/2005, TIP4P-i) are performed to illustrate the appropriate procedures to employ when simulating the planar interface between coexisting liquid and vapor phases. A method for efficiently including the long-range parts of the intermolecular dispersion interactions introduced by Janecek (J. Phys. Chem. B 2006, 110, 6264) is used. This method produces an interfacial region that is internally consistent with the dynamics of the molecules. A set of procedures are presented to verify that the surface tension estimate has converged and to obtain the underlying uncertainty of the surface tension estimate. The surface tension for the models is determined for temperatures between 300 and 550 K with an uncertainty of about 2 mN/m for this temperature range. The uncertainty is not sensitive to the temperature, but the relative uncertainty increases strongly with temperature. The surface tension is not sensitive to the system size in this temperature range provided at least 500 molecules are used, and it is shown that a thermostat does not bias the computed values.
对TIP4P水模型家族的三个成员(TIP4P、TIP4P/2005、TIP4P-i)进行了一组分子动力学模拟,以说明在模拟共存液相和气相的平面界面时应采用的适当程序。使用了一种由简切克(J. Phys. Chem. B 2006, 110, 6264)提出的有效包含分子间色散相互作用远程部分的方法。该方法产生的界面区域与分子动力学在内部是一致的。提出了一组程序来验证表面张力估计值已收敛,并获得表面张力估计值的潜在不确定性。确定了这些模型在300至550 K温度范围内的表面张力,该温度范围内的不确定性约为2 mN/m。不确定性对温度不敏感,但相对不确定性随温度强烈增加。在该温度范围内,只要使用至少500个分子,表面张力对系统大小不敏感,并且表明恒温器不会使计算值产生偏差。