화학공학소재연구정보센터
Journal of Physical Chemistry A, Vol.105, No.40, 9123-9129, 2001
Quantum-chemical modeling and analysis of the vibrational structure in the phosphorescence spectrum of C-60
The phosphorescence spectrum of C-60, recently obtained in alkane and in Xe matrixes at low temperature, has been modeled by means of semiempirical quantum chemical calculations. The T-1 --> S-0 transition in the unperturbed molecule is symmetry as well as spin multiplicity forbidden. The intensities of the false origins due to inducing modes have been calculated in terms of the Herzberg-Teller mechanism combined with an expansion over spin-orbit perturbations. To date, this is the first modeling of the phosphorescence spectrum of C-60 entirely based on computed molecular parameters. Thus, the analysis of the spectrum is based not only on vibrational frequencies, but also on the comparison between computed and observed vibronic intensities. The calculations indicate that the vibrational structure is dominated by false origins due to modes of h, g, and t(lu) symmetry, but contains also a number of combination bands based mainly on the Jahn-Teller active h(g)(l) mode.