A multiconfigurational self-consistent reaction-field method
- 1 September 1988
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 89 (5) , 3086-3095
- https://doi.org/10.1063/1.454965
Abstract
We present theory and implementation for a new approach for studying solvent effects: the multiconfigurational self‐consistent reaction‐field (MCSCRF) method. The atom, molecule, or supermolecule is assumed to be surrounded by a linear, homogeneous, continuous medium described by its macroscopic dielectric constant. The electronic structure of the compound is described by a multiconfigurational self‐consistent field (MCSCF) wave function. The wave function is fully optimized with respect to all variational parameters in the presence of the surrounding polarizable dielectric medium. We develop a second‐order convergent optimization procedure for the solvent states. The solvent integrals are evaluated by an efficient and general algorithm. The flexible description of the electronic structure allows us to accurately describe ground, excited, or ionized states of the solute. Deficiencies in the calculation can therefore be assigned to the cavity model rather than the description of the solute.Keywords
This publication has 43 references indexed in Scilit:
- Electron-transfer reactions in solution: an ab initio approachThe Journal of Physical Chemistry, 1987
- Electron transfer reactions dynamically coupled to a dielectric medium: Orientational effects and bridge assistanceInternational Journal of Quantum Chemistry, 1987
- On the SCF theory of continuum solvent effects representation: Introduction of local dielectric effectsInternational Journal of Quantum Chemistry, 1985
- Comparison of simple potential functions for simulating liquid waterThe Journal of Chemical Physics, 1983
- Electronic structure of hydrogen-bondedOPhysical Review B, 1983
- Optimization and Characterization of a Multiconfigurational Self‐Consistent Field (MCSCF) StateAdvances in Chemical Physics, 1983
- Studies of solvent effects. 1. Discrete, continuum, and discrete-continuum models and their comparison for some simple cases: ammonium(1+) ion, methanol, and substituted ammonium(1+) ionThe Journal of Physical Chemistry, 1978
- Role of ab initio calculations in elucidating properties of hydrated and ammoniated electronsThe Journal of Physical Chemistry, 1975
- Free energy of a charge distribution in concentric dielectric continuaThe Journal of Physical Chemistry, 1975
- Electric Moments of Molecules in LiquidsJournal of the American Chemical Society, 1936