Artigo Revisado por pares

Performance of the Density Functional Theory/Multireference Configuration Interaction Method on Electronic Excitation of Extended π-Systems

2008; American Chemical Society; Volume: 4; Issue: 9 Linguagem: Inglês

10.1021/ct8001738

ISSN

1549-9626

Autores

Christel M. Marian, Natalie Gilka,

Tópico(s)

Fullerene Chemistry and Applications

Resumo

The combined density functional theory/multireference configuration interaction (DFT/MRCI) method [Grimme and Waletzke. J. Chem. Phys. 1999, 111, 5645] has been employed to study the 1La and 1Lb states of linear polyacenes and the low-lying triplet and singlet states of linear polyenes and diphenyl-polyenes. We have systematically investigated the dependence of the electronic state properties on technical parameters of the calculations such as the atomic orbital basis set or the geometry optimization approach. The choice of basis set appears to be of minor importance whereas the excitation energies of the polyenes are quite sensitive to the ground-state geometry parameters. The DFT/MRCI energies at the B3-LYP optimized geometries systematically underestimate the experimental values, but we do not observe a bias toward one or the other type of state. The energy gaps between the electronically excited states are reproduced very well. In particular, this applies also to the first excited singlet 2 1Ag− and the optically bright 1Bu+ state of the polyenes. The latter appears to be the S3 or even S4 state in longer polyenes where the multiconfigurational 1Bu− state represents S2. Frequencies and intensities of the excited-state absorption from the 2 1Ag− state are found to be strongly geometry dependent.

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