Energy Decomposition Analyses for Many-Body Interaction and Applications to Water Complexes
Author(s) -
Wei Chen,
Mark S. Gordon
Publication year - 1996
Publication title -
the journal of physical chemistry
Language(s) - English
Resource type - Journals
eISSN - 1541-5740
pISSN - 0022-3654
DOI - 10.1021/jp960694r
Subject(s) - pauli exclusion principle , counterpoise , tetramer , water dimer , trimer , interaction energy , basis set , hartree–fock method , chemistry , superposition principle , polarization (electrochemistry) , charge (physics) , computational chemistry , atomic physics , statistical physics , physics , dimer , quantum mechanics , density functional theory , molecule , biochemistry , hydrogen bond , organic chemistry , enzyme
Two algorithms for many-body interaction energy decomposition within the Hartree−Fock approximation are presented. These two schemes, which are extensions of the two-body Kitaura−Morokuma (KM) analysis and the reduced variational space self-consistent-field (RVS SCF) method, decompose the interaction energy into electrostatic, exchange, polarization, and charge transfer components. The Hartree-Fock interaction energies for the optimum water dimer, trimer, and tetramer were analyzed in terms of two-, three-, and four-body terms of these individual components. Counterpoise calculations of the exchange and charge transfer components proposed by Tomasi were performed to estimate the basis set superposition errors. The results show that the three-body nonadditive terms of water trimer and tetramer are dominated by the polarization and charge transfer components at their optimized structures with various basis sets and that the four-body term of water tetramer is very small. The RVS SCF energy components, whose...
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