首页> 外文期刊>Bulletin of the Korean Chemical Society >The Analytic Gradient with a Reduced Molecular Orbital Space for the Equation-of-Motion Coupled-Cluster Theory: Systematic Study of the Magnitudes and Trends in Simple Molecules
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The Analytic Gradient with a Reduced Molecular Orbital Space for the Equation-of-Motion Coupled-Cluster Theory: Systematic Study of the Magnitudes and Trends in Simple Molecules

机译:运动方程耦合簇理论的具有减小的分子轨道空间的解析梯度:简单分子的幅度和趋势的系统研究

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The analytic gradient method for the equation-of-motion coupled-cluster singles and doubles (EOM-CCSD) energy has been extended to employ a reduced molecular orbital (MO) space. Not only the innermost core MOs but also some of the outermost virtual MOs can be dropped in the reduced MO space, and a substantial amount of computation time can be reduced without deteriorating the results. In order to study the magnitudes and trends of the effects of the dropped MOs, the geometries and vibrational properties of the ground and excited states of BF, CO, CN, N2, AlCl, SiS, P2, BCl, AIF, CS, SiO, PN and GeSe are calculated with different sizes of molecular orbital space. The 6-31 G* and the aug-cc-pVTZ basis sets are employed for all molecules except GeSc for which the 6-311 G* and the TZV+f basis sets are used. It is shown that the magnitudes of the drop-MO effects are about 0.005∈ in bond lengths and about 1% on harmonic frequencies and IR intensities provided that the dropped MOs correspond to (1s), (1s,2s,2p), an (1s,2s,2p,3s,3p) atomic orbitals of the first, the second, and the third row atoms, respectively. The geometries and vibrational properties of the first and the second excited states of HCN and HNC are calculated by using a drastically reduced virtual MO space as well as with the well defined frozen core MO space. The results suggest the possibility of using a very smalI MO space for qualitative study of valence excited states.
机译:运动方程耦合簇单双精度(EOM-CCSD)能量的解析梯度方法已扩展为采用减少的分子轨道(MO)空间。不仅最内层的核心MO,而且最外层的虚拟MO都可以放置在缩小的MO空间中,并且可以减少大量的计算时间而不会降低结果的质量。为了研究下降的MO的影响的大小和趋势,BF,CO,CN,N2,AlCl,SiS,P2,BCl,AIF,CS,SiO的基态和激发态的几何形状和振动特性,用不同大小的分子轨道空间计算PN和GeSe。除GeSc使用6-311 G *和TZV + f基础集外,所有分子均使用6-31 G *和aug-cc-pVTZ基础集。结果表明,如果下降的MO分别对应于(1s),(1s,2s,2p),(第一,第二和第三行原子的1s,2s,2p,3s,3p)原子轨道。 HCN和HNC的第一和第二激发态的几何形状和振动特性是通过使用大幅减少的虚拟MO空间以及定义明确的冻结核MO空间来计算的。结果表明可能使用很小的MO空间进行价态激发态的定性研究。

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