Bozkaya Uğur, Ünal Aslı, Alagöz Yavuz
Department of Chemistry, Hacettepe University, Ankara 06800, Turkey.
J Chem Phys. 2020 Dec 28;153(24):244115. doi: 10.1063/5.0035811.
Efficient implementations of the orbital-optimized coupled-cluster doubles (or simply "optimized CCD," OCCD, for short) method and its analytic energy gradients with the density-fitting (DF) approach, denoted by DF-OCCD, are presented. In addition to the DF approach, the Cholesky-decomposed variant (CD-OCCD) is also implemented for energy computations. The computational cost of the DF-OCCD method (available in a plugin version of the DFOCC module of PSI4) is compared with that of the conventional OCCD (from the Q-CHEM package). The OCCD computations were performed with the Q-CHEM package in which OCCD are denoted by OD. In the conventional OCCD method, one needs to perform four-index integral transformations at each of the CCD iterations, which limits its applications to large chemical systems. Our results demonstrate that DF-OCCD provides dramatically lower computational costs compared to OCCD, and there are almost eightfold reductions in the computational time for the CH molecule with the cc-pVTZ basis set. For open-shell geometries, interaction energies, and hydrogen transfer reactions, DF-OCCD provides significant improvements upon DF-CCD. Furthermore, the performance of the DF-OCCD method is substantially better for harmonic vibrational frequencies in the case of symmetry-breaking problems. Moreover, several factors make DF-OCCD more attractive compared to CCSD: (1) for DF-OCCD, there is no need for orbital relaxation contributions in analytic gradient computations; (2) active spaces can readily be incorporated into DF-OCCD; (3) DF-OCCD provides accurate vibrational frequencies when symmetry-breaking problems are observed; (4) in its response function, DF-OCCD avoids artificial poles; hence, excited-state molecular properties can be computed via linear response theory; and (5) symmetric and asymmetric triples corrections based on DF-OCCD [DF-OCCD(T)] have a significantly better performance in near degeneracy regions.
本文提出了轨道优化耦合簇双激发(简称为“优化CCD”,简称OCCD)方法及其采用密度拟合(DF)方法的解析能量梯度的高效实现,记为DF - OCDD。除了DF方法外,还实现了用于能量计算的Cholesky分解变体(CD - OCDD)。将DF - OCDD方法(可在PSI4的DFOCC模块插件版本中使用)的计算成本与传统OCCD(来自Q - CHEM软件包)的计算成本进行了比较。OCCD计算是使用Q - CHEM软件包进行的,其中OCCD用OD表示。在传统的OCCD方法中,需要在每次CCD迭代时进行四指标积分变换,这限制了其在大型化学系统中的应用。我们的结果表明,与OCCD相比,DF - OCDD的计算成本显著降低,对于采用cc - pVTZ基组的CH分子,计算时间几乎减少了八倍。对于开壳层几何结构、相互作用能和氢转移反应,DF - OCDD比DF - CCD有显著改进。此外,在对称性破缺问题的情况下,DF - OCDD方法对于谐波振动频率的性能要好得多。而且,与CCSD相比,有几个因素使得DF - OCDD更具吸引力:(1)对于DF - OCDD,在解析梯度计算中不需要轨道弛豫贡献;(2)活性空间可以很容易地纳入DF - OCDD;(3)当观察到对称性破缺问题时,DF - OCDD提供准确的振动频率;(4)在其响应函数中,DF - OCDD避免了人工极点;因此,可以通过线性响应理论计算激发态分子性质;(5)基于DF - OCDD [DF - OCDD(T)]的对称和不对称三重校正在近简并区域具有显著更好的性能。