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A General Quantum Mechanically Derived Force Field (QMDFF) for Molecules and Condensed Phase Simulations

机译:用于分子和凝聚相模拟的通用量子力学衍生力场(QMDFF)

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摘要

A black-box type procedure is presented for the generation of molecule-specific, classical potential energy functions (force-field, FF) solely from quantum mechanically (QM) computed input data. The approach can treat covalently bound molecules and noncovalent complexes with almost arbitrary structure. The necessary QM information consists of the equilibrium structure and the corresponding Hessian matrix, atomic partial charges, and covalent bond orders. The FF fit is performed automatically without any further input and yields a specific (nontransferable) potential which very closely resembles the QM reference potential near the equilibrium. The resulting atomistic, fully flexible FF is anharmonic and allows smooth dissociation of covalent bonds into atoms. A newly proposed force-constant-bond-energy relation with little empiricism provides reasonably accurate (about 5-10% error) atomization energies for almost arbitrary diatomic and polyatomic molecules. Intra- and intermolecular noncovalent interactions are treated by using well established and accurate D3 dispersion coefficients, CM5 charges from small basis set QM calculations, and a new interatomic repulsion potential. Particular attention has been paid to the construction of the torsion potentials which are partially obtained from automatic QM-tight-binding calculations for model systems. Detailed benchmarks are presented for conformational energies, atomization energies, vibrational frequencies, gas phase structures of organic molecules, and transition metal complexes. Comparisons to results from standard FF or semiempirical methods reveal very good accuracy of the new potential. While further studies are necessary to validate the approach, the initial results suggest QMDFF as a routine tool for the computation of a wide range of properties and systems (e.g., for molecular dynamics of isolated molecules, explicit solvation, self- solvation (melting) or even for molecular crystals) in particular when standard parametrizations are unavailable.
机译:提出了一种黑匣子程序,仅从量子力学(QM)计算的输入数据中生成分子特定的经典势能函数(力场,FF)。该方法可以处理具有几乎任意结构的共价结合分子和非共价复合物。必要的QM信息包括平衡结构和相应的Hessian矩阵,原子部分电荷和共价键顺序。 FF拟合是自动执行的,无需任何其他输入,并且会产生特定(不可转移)电势,该电势非常类似于平衡附近的QM参考电势。所得的原子性,完全柔性的FF是非谐性的,可以使共价键顺利解离成原子。新近提出的几乎没有经验的力-常数-键-能量关系为几乎任意双原子和多原子分子提供了相当准确的(约5-10%的误差)雾化能量。分子内和分子间的非共价相互作用是通过使用已建立且准确的D3弥散系数,小基数QM计算得出的CM5电荷以及新的原子间排斥势来处理的。已经特别注意了扭转势的构造,该扭转势的一部分是从模型系统的自动QM紧束缚计算中获得的。给出了有关构象能量,雾化能量,振动频率,有机分子的气相结构和过渡金属络合物的详细基准。与标准FF或半经验方法的结果进行比较后,发现了新潜力的非常好的准确性。尽管有必要进行进一步的研究以验证该方法,但初步结果表明QMDFF是计算各种特性和系统的常规工具(例如,用于分离分子的分子动力学,显式溶剂化,自溶剂化(熔融)或即使对于分子晶体也是如此),特别是在没有标准参数设置的情况下。

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