Golubeva Anna A, Pieniazek Piotr A, Krylov Anna I
Department of Chemistry, University of Southern California, Los Angeles, California 90089-0482, USA.
J Chem Phys. 2009 Mar 28;130(12):124113. doi: 10.1063/1.3098949.
An implementation of gradient and energy calculations for configuration interaction variant of equation-of-motion coupled cluster with single and double substitutions for ionization potentials (EOM-IP-CCSD) is reported. The method (termed IP-CISD) treats the ground and excited doublet electronic states of an N-electron system as ionizing excitations from a closed-shell N+1-electron reference state. The method is naturally spin adapted, variational, and size intensive. The computational scaling is N(5), in contrast with the N(6) scaling of EOM-IP-CCSD. The performance and capabilities of the new approach are demonstrated by application to the uracil cation and water and benzene dimer cations by benchmarking IP-CISD against more accurate IP-CCSD. The equilibrium geometries, especially relative differences between different ionized states, are well reproduced. The average absolute errors and the standard deviations averaged for all bond lengths in all electronic states (58 values in total) are 0.014 and 0.007 A, respectively. IP-CISD systematically underestimates intramolecular distances and overestimates intermolecular ones, because of the underlying uncorrelated Hartree-Fock reference wave function. The IP-CISD excitation energies of the cations are of a semiquantitative value only, showing maximum errors of 0.35 eV relative to EOM-IP-CCSD. Trends in properties such as dipole moments, transition dipoles, and charge distributions are well reproduced by IP-CISD.
报道了用于电离势的含单双取代的运动方程耦合簇组态相互作用变体(EOM-IP-CCSD)的梯度和能量计算的一种实现方法。该方法(称为IP-CISD)将N电子体系的基态和激发态双重态电子态视为来自闭壳层N + 1电子参考态的电离激发。该方法自然地进行自旋适配、变分且具有尺寸集约性。计算标度为N(5),而EOM-IP-CCSD的计算标度为N(6)。通过将IP-CISD与更精确的IP-CCSD进行基准测试,将新方法应用于尿嘧啶阳离子、水和苯二聚体阳离子,证明了新方法的性能和能力。平衡几何结构,特别是不同电离态之间的相对差异,得到了很好的再现。所有电子态中所有键长的平均绝对误差和标准偏差(总共58个值)分别为0.014 Å和0.007 Å。由于基础的非相关哈特里-福克参考波函数,IP-CISD系统地低估了分子内距离并高估了分子间距离。阳离子的IP-CISD激发能仅具有半定量值,相对于EOM-IP-CCSD显示出最大误差为0.35 eV。IP-CISD很好地再现了诸如偶极矩、跃迁偶极矩和电荷分布等性质的趋势。