Opoku Ernest, Pawłowski Filip, Ortiz J V
Department of Chemistry and Biochemistry, Auburn University, Auburn, Alabama 36849-5312, United States.
J Phys Chem A. 2024 Aug 29;128(34):7311-7330. doi: 10.1021/acs.jpca.4c04318. Epub 2024 Aug 14.
For closed-shell molecules, valence electron binding energies may be calculated accurately and efficiently with electron-propagator methods that have surpassed their predecessors. Advantageous combinations of accuracy and efficiency range from cubically scaling methods with mean errors of 0.2 eV to quintically scaling methods with mean errors of 0.1 eV or less. The diagonal self-energy approximation in the canonical Hartree-Fock basis is responsible for the enhanced efficiency of several methods. This work examines the predictive capabilities of diagonal self-energy approximations when they are generalized to the canonical spin-orbital basis of unrestricted Hartree-Fock (UHF) theory. Experimental data on atomic electron binding energies and high-level, correlated calculations in a fixed basis for a set of open-shell molecules constitute standards of comparison. A review of the underlying theory and analysis of numerical errors lead to several recommendations for the calculation of electron binding energies: (1) In calculations that employ the diagonal self-energy approximation, Koopmans's identity for UHF must be qualitatively correct. (2) Closed-shell reference states are preferable to open-shell reference states in calculations of molecular ionization energies and electron affinities. (3) For molecular electron binding energies between doublets and triplets, calculations of electron detachment energies are more accurate and efficient than calculations of electron attachment energies. When these recommendations are followed, mean absolute errors increase by approximately 0.05 eV with respect to their counterparts obtained with closed-shell reference orbitals.
对于闭壳层分子,价电子结合能可以用超越其前身的电子传播子方法准确而高效地计算。精度和效率的有利组合范围从平均误差为0.2 eV的三次方标度方法到平均误差为0.1 eV或更小的五次方标度方法。正则Hartree-Fock基中的对角自能近似是几种方法提高效率的原因。这项工作研究了对角自能近似推广到无限制Hartree-Fock(UHF)理论的正则自旋轨道基时的预测能力。关于原子电子结合能的实验数据以及一组开壳层分子在固定基中的高水平相关计算构成了比较标准。对基础理论的回顾和数值误差分析得出了一些计算电子结合能的建议:(1)在采用对角自能近似的计算中,UHF的Koopmans恒等式必须在定性上正确。(2)在计算分子电离能和电子亲和能时,闭壳层参考态比开壳层参考态更可取。(3)对于双重态和三重态之间的分子电子结合能,计算电子脱离能比计算电子附着能更准确、更高效。遵循这些建议时,相对于使用闭壳层参考轨道获得的对应值,平均绝对误差增加约0.05 eV。