QUANTUM-CHEMISTRY STUDY OF THE INTERACTIONS OF LI-, AND I- IONS WITH MODEL ETHERS(, CL)

Citation
Gd. Smith et al., QUANTUM-CHEMISTRY STUDY OF THE INTERACTIONS OF LI-, AND I- IONS WITH MODEL ETHERS(, CL), The journal of physical chemistry. A, Molecules, spectroscopy, kinetics, environment, & general theory, 101(9), 1997, pp. 1705-1715
Citations number
26
Categorie Soggetti
Chemistry Physical
ISSN journal
10895639
Volume
101
Issue
9
Year of publication
1997
Pages
1705 - 1715
Database
ISI
SICI code
1089-5639(1997)101:9<1705:QSOTIO>2.0.ZU;2-D
Abstract
The geometries and energies of complexes of Li+, Cl-, and I- with meth ane and model ether molecules have been studied using ab initio electr onic structure calculations. For Li+, a [5s3p2d] basis set which accur ately describes core electrons was derived. For Cl-, basis sets as lar ge as [8s7p4d1f] were considered, while for I- an 2sp1d ECP basis set augmented by a set of diffuse functions as large as [5sp4d1f] was empl oyed. Calculations were performed at the SCF and MP2 levels of theory, and the effects of basis set superposition error on binding energies were considered. For the methane and ether molecules both D95* and cc -pVTZ basis sets with additional diffuse s and p functions were employ ed. The binding energies of Li+ to methane, dimethyl ether, and ttt 1, 2-dimethoxyethane (DME) are found to be around 10, 40, and 40 kcal/mol , respectively. The binding energy of Li+ to tgt DME is approximately 60 kcal/mol due to the favorable interaction of Li+ with both DME oxyg en atoms. The binding of Cl- and I- to dimethyl ether is much weaker, around 5-7 kcal/mol. A simple atomistic force field with two-body pote ntial functions representing polarization effects is found to reproduc e the ab initio complex energies quite well for the single ligand comp lexes. Polarization effects contribute significantly to the binding of Li+ to the neutral molecules, while the polarization effects in Cl- a nd I- complexes with dimethyl ether are relatively weak. The two-body force field accounts only partially for the decrease in binding per li gand in Li+-[O(CH3)(2)](n) complexes with the number of ligands as obs erved in the quantum chemistry calculations.