N. Yoshida et S. Kato, Molecular Ornstein-Zernike approach to the solvent effects on solute electronic structures in solution, J CHEM PHYS, 113(12), 2000, pp. 4974-4984
A new approach to ab initio electronic structure calculations of solute mol
ecules in solution is presented. Combined with the molecular Ornstein-Zerni
ke (MOZ) integral equation theory for polyatomic liquids, solute electronic
wave function and solvent distribution around a solute are determined in a
self-consistent manner. The hypernetted chain approximation is employed fo
r solving the MOZ equation. In order to describe the short-range solute-sol
vent interactions, the effective potential operating solute electron is pla
ced on a solute molecule, which is determined by a least-squares fitting to
ab initio exchange repulsion/charge transfer energies. The present method,
referred to as the MOZ self-consistent-field (SCF) method, is applied to a
solute H2O molecule in water solvent. The solvent shift for the vertical e
xcitation to the n pi(*) state of H2CO in aqueous solution is also examined
. The results obtained by the MOZ-SCF calculations are compared with those
by the reference interaction site model-SCF theory and the polarizable cont
inuum model. (C) 2000 American Institute of Physics. [S0021-9606(00)51236-7
].