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MultipolarEwald Methods 2: Applications Using aQuantum Mechanical Force Field

机译:多极Ewald方法2:使用量子机械力场

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摘要

A fully quantum mechanical force field (QMFF) based on a modified “divide-and-conquer” (mDC) framework is applied to a series of molecular simulation applications, using a generalized Particle Mesh Ewald method extended to multipolar charge densities. Simulation results are presented for three example applications: liquid water, p-nitrophenylphosphate reactivity in solution, and crystalline N,N-dimethylglycine. Simulations of liquid water using a parametrized mDC model are compared to TIP3P and TIP4P/Ew water models and experiment. The mDC model is shown to be superior for cluster binding energies and generally comparable for bulk properties. Examination of the dissociative pathway for dephosphorylation of p-nitrophenylphosphate shows that the mDC method evaluated with the DFTB3/3OB and DFTB3/OPhyd semiempirical models bracket the experimental barrier, whereas DFTB2 and AM1/d-PhoT QM/MM simulations exhibit deficiencies in the barriers, the latter for which is related, in part, to the anomalous underestimation of the p-nitrophenylate leaving group pKa. Simulations of crystalline N,N-dimethylglycine are performed and the overall structure and atomic fluctuations are compared with the experiment and the general AMBER force field (GAFF).The QMFF, which was not parametrized for this application, was shownto be in better agreement with crystallographic data than GAFF. Oursimulations highlight some of the application areas that may benefitfrom using new QMFFs, and they demonstrate progress toward the developmentof accurate QMFFs using the recently developed mDC framework.
机译:基于扩展的“分而治之”(mDC)框架的全量子机械力场(QMFF)使用扩展到多极电荷密度的广义粒子网格Ewald方法应用于一系列分子模拟应用。给出了三个示例应用的仿真结果:液态水,对硝基苯基磷酸酯在溶液中的反应性以及结晶N,N-二甲基甘氨酸。使用参数化mDC模型对液态水的仿真与TIP3P和TIP4P / Ew水模型进行了比较并进行了实验。显示出mDC模型对于簇结合能是优越的,并且在整体性质上通常是可比的。对磷酸对硝基苯酯去磷酸化的解离途径的研究表明,用DFTB3 / 3OB和DFTB3 / OPhyd半经验模型评估的mDC方法支持了实验障碍,而DFTB2和AM1 / d-PhoT QM / MM模拟显示了障碍,后者部分与对硝基苯甲酸酯离去基团pKa的异常低估有关。进行了结晶N,N-二甲基甘氨酸的模拟,并将整体结构和原子涨落与实验和一般的AMBER力场(GAFF)进行了比较。显示了未为此应用参数化的QMFF与GAFF晶体学数据的一致性更好。我们的模拟突出显示了一些可能有益的应用领域通过使用新的QMFF,它们展示了开发方面的进展使用最近开发的mDC框架精确的QMFF。

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