Verstraelen Toon, Vandenbrande Steven, Ayers Paul W
Center for Molecular Modeling (CMM), Member of the QCMM Ghent-Brussels Alliance, Ghent University, Technologiepark 903, B9000 Ghent, Belgium.
Department of Chemistry and Chemical Biology, McMaster University, 1280 Main Street West, Hamilton, Ontario L8S 4M1, Canada.
J Chem Phys. 2014 Nov 21;141(19):194114. doi: 10.1063/1.4901513.
We present an improved electronic linear response model to incorporate polarization and charge-transfer effects in polarizable force fields. This model is a generalization of the Atom-Condensed Kohn-Sham Density Functional Theory (DFT), approximated to second order (ACKS2): it can now be defined with any underlying variational theory (next to KS-DFT) and it can include atomic multipoles and off-center basis functions. Parameters in this model are computed efficiently as expectation values of an electronic wavefunction, obviating the need for their calibration, regularization, and manual tuning. In the limit of a complete density and potential basis set in the ACKS2 model, the linear response properties of the underlying theory for a given molecular geometry are reproduced exactly. A numerical validation with a test set of 110 molecules shows that very accurate models can already be obtained with fluctuating charges and dipoles. These features greatly facilitate the development of polarizable force fields.
我们提出了一种改进的电子线性响应模型,以将极化和电荷转移效应纳入可极化力场中。该模型是原子凝聚的Kohn-Sham密度泛函理论(DFT)的推广,近似到二阶(ACKS2):现在它可以用任何基础变分理论(除了KS-DFT)来定义,并且可以包括原子多极矩和偏心基函数。该模型中的参数作为电子波函数的期望值被高效计算,无需对其进行校准、正则化和手动调整。在ACKS2模型中完全密度和势基组的极限情况下,对于给定分子几何结构的基础理论的线性响应性质能够被精确再现。对110个分子的测试集进行的数值验证表明,使用波动电荷和偶极子已经可以获得非常精确的模型。这些特性极大地促进了可极化力场的发展。