A CSOV study of the difference between HF and DFT intermolecular interaction energy values: The importance of the charge transfer contribution

被引:95
作者
Piquemal, JP
Marquez, A
Parisel, O
Giessner-Prettre, C
机构
[1] Univ Paris 06, CNRS, UMR 7616, Chim Theor Lab, F-75252 Paris, France
[2] Univ Seville, Fac Quim, Dept Quim Fis, E-41012 Seville, Spain
[3] Univ Nice, Fac Sci, Lab Etude Theor Milieux Extremes, F-06108 Nice, France
关键词
intermolecular interaction energy decomposition; DFT vs. HF results; CSOV;
D O I
10.1002/jcc.20242
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Intermolecular interaction energy decompositions using the Constrained Space Orbital Variation (CSOV) method are carried out at the Hartree-Fock level on the one hand and using DFT with usual GGA functionals on the other for a number of model complexes to analyze the role of electron correlation in the intermolecular stabilization energy. In addition to the overall stabilization, the results provide information on the variation, with respect to the computational level, of the different contributions to the interaction energy. The complexes studied are the water linear dimer, the N-methylformamide dimer, the nucleic acid base pairs, the benzene-methane and benzene-N-2 van der Waals complexes, [Cu+-(ImH)(3)](2), where "ImH" stands for the Imidazole ligand, and ImH-Zn++. The variation of the frozen core energy (the sum of the intermolecular electrostatic energy and the Pauli repulsion energy) calculated from the unperturbed orbitals of the interacting entities indicates that the intramolecular correlation contributions can be stabilizing as well as destabilizing, and that general trends can be derived from the results obtained using usual density functionals. The most important difference between the values obtained from HF and DFT computations concerns the charge transfer contribution, which, in most cases, undergoes the largest increase. The physical meaning of these results is discussed. The present work gives reference calculations that might be used to parametrize new correlated molecular mechanics potentials. (c) 2005 Wiley Periodicals, Inc.
引用
收藏
页码:1052 / 1062
页数:11
相关论文
共 62 条
[1]   Density functional theory based effective fragment potential method [J].
Adamovic, I ;
Freitag, MA ;
Gordon, MS .
JOURNAL OF CHEMICAL PHYSICS, 2003, 118 (15) :6725-6732
[2]  
Bader F.W., 1994, Atoms in molecules: a quantum theory
[3]   A NEW ANALYSIS OF CHARGE-TRANSFER AND POLARIZATION FOR LIGAND-METAL BONDING - MODEL STUDIES OF AL4CO AND AL4NH3 [J].
BAGUS, PS ;
HERMANN, K ;
BAUSCHLICHER, CW .
JOURNAL OF CHEMICAL PHYSICS, 1984, 80 (09) :4378-4386
[4]   CENTRAL BOND IN THE 3 CN-BULLET DIMERS NC-CN, CN-CN, AND CN-NC - ELECTRON PAIR BONDING AND PAULI REPULSION EFFECTS [J].
BICKELHAUPT, FM ;
NIBBERING, NMM ;
VANWEZENBEEK, EM ;
BAERENDS, EJ .
JOURNAL OF PHYSICAL CHEMISTRY, 1992, 96 (12) :4864-4873
[5]  
CHUNG SC, 1996, CHEM PHYS LETT, V109, P248
[6]   EFFICIENT DIFFUSE FUNCTION-AUGMENTED BASIS SETS FOR ANION CALCULATIONS. III. THE 3-21+G BASIS SET FOR FIRST-ROW ELEMENTS, LI-F [J].
CLARK, T ;
CHANDRASEKHAR, J ;
SPITZNAGEL, GW ;
SCHLEYER, PV .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (03) :294-301
[7]  
Clementi E., 1980, COMPUTATIONAL ASPECT
[8]   COMPARISON OF MOROKUMA AND PERTURBATION-THEORY APPROACHES TO DECOMPOSITION OF INTERACTION ENERGY - (NH4)+ ... NH3 [J].
CYBULSKI, SM ;
SCHEINER, S .
CHEMICAL PHYSICS LETTERS, 1990, 166 (01) :57-64
[10]  
DUPUIS M, HONDO953 QCPE