Department of Chemistry, Wayne State University, 5101 Cass Avenue, Detroit, Michigan 48202, USA.
J Chem Phys. 2010 Mar 28;132(12):124103. doi: 10.1063/1.3366521.
The electronic excitation energies and transition dipole moments are the essential ingredients to compute an optical spectrum of any molecular system. Here we extend the exciton scattering (ES) approach, originally developed for computing excitation energies in branched conjugated molecules, to the calculation of the transition dipole moments. The ES parameters that characterize contributions of molecular building blocks to the total transition dipole can be extracted from the quantum-chemical calculations of the excited states in simple molecular fragments. Using these extracted parameters, one can then effortlessly calculate the oscillator strengths and optical spectra of various large molecular structures. We illustrate application of this extended ES approach using an example of phenylacetylene-based molecules. Absorption spectra predicted by the ES approach show close agreement with the results of the reference quantum-chemical calculations.
电子激发能和跃迁偶极矩是计算任何分子系统的光学光谱的基本要素。在这里,我们将最初为计算支化共轭分子中的激发能而开发的激子散射 (ES) 方法扩展到跃迁偶极矩的计算。可以从简单分子片段中激发态的量子化学计算中提取出表征分子构建基元对总跃迁偶极贡献的 ES 参数。然后,使用这些提取的参数,可以轻松地计算各种大型分子结构的振子强度和光学光谱。我们使用基于苯乙炔的分子的例子来说明这种扩展的 ES 方法的应用。ES 方法预测的吸收光谱与参考量子化学计算的结果非常吻合。