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Reduced-cost linear-response CC2 method based on natural orbitals and natural auxiliary functions

机译:基于自然轨道和自然辅助函数的低成本线性响应CC2方法

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摘要

A reduced-cost density fitting (DF) linear-response second-order coupled-cluster (CC2) method has been developed for the evaluation of excitation energies. The method is based on the simultaneous truncation of the molecular orbital (MO) basis and the auxiliary basis set used for the DF approximation. For the reduction of the size of the MO basis, state-specific natural orbitals (NOs) are constructed for each excited state using the average of the second-order Møller–Plesset (MP2) and the corresponding configuration interaction singles with perturbative doubles [CIS(D)] density matrices. After removing the NOs of low occupation number, natural auxiliary functions (NAFs) are constructed [M. Kállay, J. Chem. Phys. >141, 244113 (2014)], and the NAF basis is also truncated. Our results show that, for a triple-zeta basis set, about 60% of the virtual MOs can be dropped, while the size of the fitting basis can be reduced by a factor of five. This results in a dramatic reduction of the computational costs of the solution of the CC2 equations, which are in our approach about as expensive as the evaluation of the MP2 and CIS(D) density matrices. All in all, an average speedup of more than an order of magnitude can be achieved at the expense of a mean absolute error of 0.02 eV in the calculated excitation energies compared to the canonical CC2 results. Our benchmark calculations demonstrate that the new approach enables the efficient computation of CC2 excitation energies for excited states of all types of medium-sized molecules composed of up to 100 atoms with triple-zeta quality basis sets.
机译:已开发出一种成本降低的密度拟合(DF)线性响应二阶耦合簇(CC2)方法,用于评估激发能。该方法基于分子轨道(MO)基础和用于DF近似的辅助基础集的同时截断。为了减小MO基础的大小,使用二阶Møller–Plesset(MP2)的平均值和带有扰动双精度的相应配置相互作用单项[CIS]为每个激发态构造了特定于状态的自然轨道(NOs) (D)]密度矩阵。删除低占用数量的NO后,便构建了自然辅助功能(NAF)[M.卡拉·J·化学物理> 141 ,244113(2014)],NAF基础也被截断。我们的结果表明,对于三重Zeta基础集,大约60%的虚拟MO可以删除,而拟合基础的大小可以减少5倍。这导致CC2方程解的计算成本大大降低,在我们的方法中,这与评估MP2和CIS(D)密度矩阵一样昂贵。总而言之,与标准CC2结果相比,在计算的激发能量中平均绝对误差为0.02 eV的情况下,可以实现大于一个数量级的平均加速。我们的基准计算表明,这种新方法可以有效计算CC2激发能,该激发能适用于所有类型的中型分子的激发态,该分子由多达100个原子组成,具有三峰质量基集。

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