Issue 6, 2008

Ab initio calculations on low-lying electronic states of SnCl2 and Franck–Condon simulation of its photodetachment spectrum

Abstract

Geometry optimization and harmonic vibrational frequency calculations have been carried out on low-lying doublet and quartet electronic states of stannous (tin(II)) dichloride anion (SnCl2) employing the CASSCF and RCCSD(T) methods. The small-core fully-relativistic effective core potential, ECP28MDF, was used for Sn in these calculations, together with valence basis sets of up to augmented correlation-consistent polarized-valence quintuple-zeta (aug-cc-pV5Z) quality. The ground electronic state of SnCl2 is determined to be the [X with combining tilde]2B1 state, with the Ã2B2 and ã4Σg state, calculated to be ca. 1.50 and 2.72 eV higher in energy respectively. The electron affinities of the [X with combining tilde]1A1 and ã3B1 states of SnCl2 have been computed to be 1.568 ± 0.007 and 4.458 ± 0.002 eV respectively, including contributions of core correlation and extrapolation to the complete basis set limit. The SnCl2 ([X with combining tilde]1A1) + e ← SnCl2 ([X with combining tilde]2B1) and SnCl23B1) + e ← SnCl2 ([X with combining tilde]2B1) photodetachment bands have been simulated with computed Franck–Condon factors, which include an allowance for anharmonicity and Duschinsky rotation.

Graphical abstract: Ab initio calculations on low-lying electronic states of SnCl2− and Franck–Condon simulation of its photodetachment spectrum

Article information

Article type
Paper
Submitted
10 Oct 2007
Accepted
14 Nov 2007
First published
06 Dec 2007

Phys. Chem. Chem. Phys., 2008,10, 834-843

Ab initio calculations on low-lying electronic states of SnCl2 and Franck–Condon simulation of its photodetachment spectrum

E. P. F. Lee, J. M. Dyke, D. K. W. Mok, W. Chow and F. Chau, Phys. Chem. Chem. Phys., 2008, 10, 834 DOI: 10.1039/B715595F

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