College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China.
J Chem Phys. 2012 Apr 14;136(14):144313. doi: 10.1063/1.3703310.
High resolved absorption and fluorescence spectra of zinc complexes of phthalocyanine (ZnPc) and tetrabenzoporphyrin (ZnTBP) in the region of Q states were reported. Few theoretical investigations were performed to simulate the well-resolved spectra and assigned the vibrational bands of the large molecules, especially for high symmetrical characteristic molecules, on account of the difficulties to optimize the excited states and analyze a large number of final vibrational-normal modes. In the present work, the S(0) ↔ S(1) absorption and fluorescence spectra (that is, the Q band) of ZnPc and ZnTBP were simulated using time-dependent density functional theory with the inclusions of Duschinsky and Herzberg-Teller contributions to the electronic transition dipole moments. The theoretical results provide a good description of the optical spectra and are proved to be in excellent agreement with experimental spectra in inert-gas matrices or in supersonic expansion. This study focused attentions on the optical spectral similarities and contrasts between ZnPc and ZnTBP, in particular the noticeable Duschinsky and Herzberg-Teller effects on the high-resolved absorption and fluorescence spectra were considered. Substitution of meso-tetraaza on the porphyrin macrocycle framework could affect the ground state geometry and alter the electron density distributions, the orbital energies that accessible in the Q band region of the spectrum. The results were used to help interpret both the nature of the electronic transitions in Q band region, and the spectral discrepancies between phthalocyanine and porphyrin systems.
报道了酞菁锌(ZnPc)和四苯并卟啉锌(ZnTBP)锌配合物在 Q 态区域的高分辨吸收和荧光光谱。由于优化激发态和分析大量最终振动正则模式的困难,很少有理论研究来模拟这些分辨率良好的光谱并对大分子的振动带进行分配,尤其是对于高对称特征分子。在本工作中,使用包含 Duschinsky 和 Herzberg-Teller 对电子跃迁偶极矩的贡献的含时密度泛函理论模拟了 ZnPc 和 ZnTBP 的 S(0)↔S(1)吸收和荧光光谱(即 Q 带)。理论结果很好地描述了光学光谱,并被证明与惰性气体基质或超音速膨胀中的实验光谱非常吻合。这项研究关注了 ZnPc 和 ZnTBP 之间光学光谱的相似性和对比,特别是考虑了在高分辨吸收和荧光光谱中明显的 Duschinsky 和 Herzberg-Teller 效应。卟啉大环骨架上的间四氮取代基可以影响基态几何形状并改变电子密度分布,从而改变光谱中 Q 带区域可及的轨道能量。这些结果用于帮助解释 Q 带区域中电子跃迁的性质以及酞菁和卟啉体系之间的光谱差异。