W. Eisfeld et M. Regitz, ENERGETIC AND STRUCTURAL ASPECTS OF THE SOLVATION OF ANIONS IN LIQUIDSO2, Journal of the American Chemical Society, 118(47), 1996, pp. 11918-11926
The solvation of halogen ions (F-, Cl-) in liquid SO2 was investigated
by means of ab initio calculations. Discrete complexes of one to four
SO2 ligands with a halide ion were optimized at various levels of the
ory. In the cases of the SO2 molecule and the primarily formed halosul
fite ions, the influence of the level of electron correlation and diff
erent basis sets on the structures and energies was studied by calcula
tions at various levels of theory up to QCISD(T). The stabilities of t
he halosulfite ions were found to be -46.9 kcal/mol for the fluorosulf
ite ion (1) and -19.8 kcal/mol for the chlorosulfite ion (2). Higher c
omplexes were optimized at the HF/6-31+G and MP2/6-31+G* levels, and
two different complexation patterns were obtained: complexation at the
halogen or at an oxygen of the halosulfite ion. Almost independently
of the type of complexation, each SO2 ligand afforded a stabilization
energy of 10-18 kcal/mol, thus proving that the high solvation energy
is responsible for the ionogenic character of this solvent. The bondin
g situation in the complexes was studied by NBO analyses, and it was f
ound that the stabilization is mainly due to electrostatic interaction
s, while charge transfer, covalent bonding, and orbital interactions m
ake only minor contributions.