Murakami Akinori, Kobayashi Takao, Goldberg Alexander, Nakamura Shinichiro
Mitsubishi Chemical Group Science and Technology Research Center, Inc., Aoba-ku, Yokohama 227-8502, Japan.
J Chem Phys. 2004 Jan 15;120(3):1245-52. doi: 10.1063/1.1631914.
The electronic structure of azulene molecule has been studied. We have obtained the optimized structures of ground and singlet excited states by using the complete active space self-consistent-field (CASSCF) method, and calculated vertical and 0-0 transition energies between the ground and excited states with second-order Møller-Plesset perturbation theory (CASPT2). The CASPT2 calculations indicate that the bond-equalized C(2v) structure is more stable than the bond-alternating C(s) structure in the ground state. For a physical understanding of electronic structure change from C(2v) to C(s), we have performed the CASSCF calculations of Duschinsky matrix describing mixing of the b(2) vibrational mode between the ground (1A(1)) and the first excited (1B(2)) states based on the Kekule-crossing model. The CASPT2 0-0 transition energies are in fairly good agreement with experimental results within 0.1-0.3 eV. The CASSCF oscillator strengths between the ground and excited states are calculated and compared with experimental data. Furthermore, we have calculated the CASPT2 dipole moments of ground and excited states, which show good agreement with experimental values.
对薁分子的电子结构进行了研究。我们使用完全活性空间自洽场(CASSCF)方法获得了基态和单重激发态的优化结构,并利用二阶莫勒-普莱塞特微扰理论(CASPT2)计算了基态与激发态之间的垂直跃迁能量和0-0跃迁能量。CASPT2计算表明,在基态下,键均化的C(2v)结构比键交替的C(s)结构更稳定。为了从物理上理解电子结构从C(2v)到C(s)的变化,我们基于凯库勒交叉模型对描述基态(1A(1))和第一激发态(1B(2))之间b(2)振动模式混合的杜什insky矩阵进行了CASSCF计算。CASPT2的0-0跃迁能量与实验结果在0.1 - 0.3 eV范围内相当吻合。计算了基态与激发态之间的CASSCF振子强度,并与实验数据进行了比较。此外,我们还计算了基态和激发态的CASPT2偶极矩,其与实验值吻合良好。