Institute of Physical Chemistry and National Center for Computational Design and Discovery of Novel Materials (MARVEL), Department of Chemistry, University of Basel, 4056 Basel, Switzerland.
J Chem Phys. 2020 Oct 14;153(14):144118. doi: 10.1063/5.0023590.
Alchemical perturbation density functional theory has been shown to be an efficient and computationally inexpensive way to explore chemical compound space. We investigate approximations made, in terms of atomic basis sets and the perturbation order, introduce an electron-density based estimate of errors of the alchemical prediction, and propose a correction for effects due to basis set incompleteness. Our numerical analysis of potential energy estimates, and resulting binding curves, is based on coupled-cluster single double (CCSD) reference results and is limited to all neutral diatomics with 14 electrons (AlH⋯NN). The method predicts binding energy, equilibrium distance, and vibrational frequencies of neighboring out-of-sample diatomics with near CCSD quality using perturbations up to the fifth order. We also discuss simultaneous alchemical mutations at multiple sites in benzene.
化学变换密度泛函理论已被证明是一种高效且计算成本低廉的方法,可用于探索化学化合物空间。我们研究了在原子基组和微扰阶数方面所做的近似,引入了一种基于电子密度的化学预测误差估计,并提出了一种针对基组不完整性影响的修正方法。我们对势能估计值和由此产生的结合曲线的数值分析是基于耦合簇单双(CCSD)参考结果,并限于所有具有 14 个电子的中性双原子(AlH⋯NN)。该方法使用高达五阶的微扰预测了具有接近 CCSD 质量的相邻样本外双原子的结合能、平衡距离和振动频率。我们还讨论了苯中多个位点的同时化学突变。