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丁二烯、丙烯醛和乙二醛的单重激发态与双重激发态:几何结构与电子光谱。

Singly and doubly excited states of butadiene, acrolein, and glyoxal: Geometries and electronic spectra.

作者信息

Saha Biswajit, Ehara Masahiro, Nakatsuji Hiroshi

机构信息

Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Kyoto 615-8510, Japan.

出版信息

J Chem Phys. 2006 Jul 7;125(1):014316. doi: 10.1063/1.2200344.

Abstract

Excited-state geometries and electronic spectra of butadiene, acrolein, and glyoxal have been investigated by the symmetry adapted cluster configuration interaction (SAC-CI) method in their s-trans conformation. Valence and Rydberg states below the ionization threshold have been precisely calculated with sufficiently flexible basis sets. Vertical and adiabatic excitation energies were well reproduced and the detailed assignments were given taking account of the second moments. The deviations of the vertical excitation energies from the experiment were less than 0.3 eV for all cases. The SAC-CI geometry optimization has been applied to some valence and Rydberg excited states of these molecules in the planar structure. The optimized ground- and excited-state geometries agree well with the available experimental values; deviations lie within 0.03 A and 0.7 degrees for the bond lengths and angles, respectively. The force acting on the nuclei caused by the excitations has been discussed in detail by calculating the SAC-CI electron density difference between the ground and excited states; the geometry relaxation was well interpreted with the electrostatic force theory. In Rydberg excitations, geometry changes were also noticed. Doubly excited states (so-called 2 (1)A(g) states) were investigated by the SAC-CI general-R method considering up to quadruple excitations. The characteristic geometrical changes and large energetic relaxations were predicted for these states.

摘要

采用对称适配团簇组态相互作用(SAC-CI)方法,对处于s-反式构象的丁二烯、丙烯醛和乙二醛的激发态几何结构和电子光谱进行了研究。利用足够灵活的基组精确计算了低于电离阈值的价态和里德堡态。垂直激发能和绝热激发能得到了很好的重现,并考虑二阶矩给出了详细的归属。在所有情况下,垂直激发能与实验值的偏差均小于0.3 eV。SAC-CI几何优化已应用于这些分子平面结构中的一些价态和里德堡激发态。优化后的基态和激发态几何结构与现有的实验值吻合良好;键长和键角的偏差分别在0.03 Å和0.7度以内。通过计算基态和激发态之间的SAC-CI电子密度差,详细讨论了激发对原子核的作用力;用静电力理论很好地解释了几何弛豫现象。在里德堡激发中,也注意到了几何结构的变化。采用SAC-CI通用-R方法研究了双激发态(所谓的2 (1)A(g)态),考虑了高达四重激发。预测了这些态的特征几何变化和大的能量弛豫。

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