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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Properties of Organic Liquids when Simulated with Long-Range Lennard-Jones Interactions
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Properties of Organic Liquids when Simulated with Long-Range Lennard-Jones Interactions

机译:用长距离Lennard-Jones相互作用模拟有机液体的性质

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In order to increase the accuracy of classical computer simulations, existing methodologies may need to be adapted. Hitherto, most force fields employ a truncated potential function to model van der Waals interactions, sometimes augmented with an analytical correction. Although such corrections are accurate for homogeneous systems with a long cutoff, they should not be used in inherently inhomogeneous systems such as biomolecular and interface systems. For such cases, a variant of the particle mesh Ewald algorithm (Lennard-Jones PME) was already proposed 20 years ago (Essmann et al. J. Chem. Phys. 1995, 103, 8577-8593), but it was implemented only recently (Wennberg et al. J. Chem. Thew), Comput 2013, 9, 3527 3537) in a major simulation code (GROMACS). The availability of this method allows surface tensions of liquids as well as bulk properties to be established, such as density and enthalpy of vaporization, without approximations due to truncation. Here, we report on simulations of,::150 liquids (taken from a force field benchmark: Caleman et al. J. Chem. Theory Comput. 2012, 8, 61-74) using three different force fields and compare simulations with and without explicit long-range van der Waals interactions. We find that the density and enthalpy of vaporization increase for most liquids using the generalized Amber force field (GAFF, Wang et al. J. Comput Chem. 2004, 25, 1157-1174) and the Charmm generalized force field (CGenFF, Vanommeslaeghe et al. J. Comput. Chem. 2010, 31, 671-690) but less so for OPLS/AA (Jorgensen and Tirado-Rives, Proc. Natl. Acad. Sci. U.S.A. 2005, 102, 6665-6670), which was parametrized with an analytical correction to the van der Waals potential. The surface tension increases by approximate to 10(-2) N/m for all force fields. These results suggest that van der Waals attractions in force fields are too strong, in particular for the GAFF and CGenFF. In addition to the simulation results, we introduce a new version of a web server, http://virtualchemistry.org, aimed at facilitating sharing and reuse of input files for molecular simulations.
机译:为了提高经典计算机仿真的准确性,可能需要调整现有方法。迄今为止,大多数力场都采用截短的势函数来建模范德华相互作用,有时会进行分析校正。尽管这样的校正对于具有长截止时间的均质系统是准确的,但不应将其用于固有非均质的系统中,例如生物分子和界面系统。对于这种情况,粒子网格Ewald算法(Lennard-Jones PME)的一种变体已经在20年前提出(Essmann等人,J。Chem。Phys。1995,103,8577-8593),但直到最近才实现(Wennberg et al.J.Chem.Thew),Comput 2013,9,3527 3537)中的主要模拟代码(GROMACS)。该方法的可用性允许建立液体的表面张力以及体积性质,例如密度和蒸发焓,而不会由于截断而产生近似值。在这里,我们报告了使用三种不同力场对:: 150液体(来自力场基准:Caleman等人,J。Chem。Theory Comput。2012,8,61-74)的仿真,并比较了有无条件下的模拟明确的远程范德华相互作用。我们发现,使用广义琥珀色力场(GAFF,Wang等人,J。Comput Chem。2004,25,1157-1174)和Charmm广义力场(CGenFF,Vanommeslaeghe等),大多数液体的蒸发密度和焓增加。 J. Comput。Chem。2010,31,671-690),但对于OPLS / AA则更少(Jorgensen和Tirado-Rives,美国国家科学院学报2005,102,6665-6670)。通过对范德华势的解析校正进行参数设置。对于所有力场,表面张力都会增加大约10(-2)N / m。这些结果表明,范德华力场中的吸引力太强,特别是对于GAFF和CGenFF而言。除了模拟结果外,我们还引入了一个新版本的Web服务器http://virtualchemistry.org,旨在促进分子模拟的输入文件的共享和重用。

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