A CASSCF/CASPT2 and TD-DFT study of the low-lying excited states of eta(5)-CpMn(CO)(3)

Citation
J. Full et al., A CASSCF/CASPT2 and TD-DFT study of the low-lying excited states of eta(5)-CpMn(CO)(3), J PHYS CH A, 105(1), 2001, pp. 184-189
Citations number
38
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF PHYSICAL CHEMISTRY A
ISSN journal
10895639 → ACNP
Volume
105
Issue
1
Year of publication
2001
Pages
184 - 189
Database
ISI
SICI code
1089-5639(20010111)105:1<184:ACATSO>2.0.ZU;2-K
Abstract
The electronic and geometric structures of eta (5)-CpMn(CO)(3) in the near- UV region are investigated through CASSCF/CASPT2 and TD-DFT methods. The op timized geometries obtained at different levels of calculation are compared to the crystal and gas-phase structures for the electronic ground state. T he change of geometry when going from the electronic ground state to the lo w-lying excited states was analyzed on the basis of gradient-CASSCF calcula tions. The lowest excited-state b(l)A' corresponding to a 3d(Mn) --> 3d(Mn) excitation calculated at 25 733 cm(-1) (3.22 eV) and the d(l)A' calculated at 30 366 cm(-1) (3.80 eV) with very low oscillator strengths (<0.007) do not show any significant geometry changes with respect to the electronic gr ound state. The main geometry changes which never exceed 10% correspond to elongations of the Mn-Cp and Mn-CO bonds (with the out-of-plane CO ligands) , The c(l)A' (3d(Mn) --> 3d(Mn)) absorbing state calculated at 26 470 cm(-1 ) (3.31 eV) with an oscillator strength of 0.0157 is characterized by an el ongation of the Mn-COax bond (COax being the in-plane carbonyl) and does no t converge to a minimum, which is a characteristic of dissociative states. Among the (l)A " (3d(Mn) --> 3d(Mn)) states calculated between 24 972 and 2 9 949 cm(-1) only the lowest one has an oscillator strength exceeding 0.01. The metal to ligand charge transfer (MLCT) states (3d(Mn) --> pi*(CO)) are calculated between 37 410-45 019 cm(-1) and are well separated from the me tal centered (MC) (3d(Mn) --> 3d(Mn)) states (approximate to1.0 eV). The ti me-dependent DFT excitation energies and related assignments compare rather well to the multistate-CASPT2 results as far as the lowest MC excited stat es are concerned.