Theoretical analysis of the bonding between CO and positively charged atoms

被引:223
作者
Lupinetti, AJ
Fau, S
Frenking, G
Strauss, SH
机构
[1] UNIV MARBURG, FACHBEREICH CHEM, D-35032 MARBURG, GERMANY
[2] COLORADO STATE UNIV, DEPT CHEM, FT COLLINS, CO 80523 USA
关键词
D O I
10.1021/jp972657l
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A detailed analysis of the changes in the electronic structure of CO when a proton or a positive charge approaches the carbon or the oxygen atom is reported using quantum mechanical ab initio calculations and several methods to analyze the theoretical data. The C-Q bond is shortened by nearly the same amount in HCO+ and QCO(+) compared to free CO, while the nearly identical C-O bond lengths of COH+ and COQ(+) are longer than in CO. H+ and Q(+) have a strong electrostatic effect upon the atom to which they are bonded, which leads to an increased electronegativity of carbon and oxygen, respectively. Inspection of the charge distribution and the natural localized orbitals shows clearly that the shorter C-O distances of HCO+ and QCO(+) and the longer C-O bond lengths of COH+ and COQ(+) are due to the changes in the polarization of the bonding orbitals which are caused by the positive charge of H+ or Q(+) that are bonded to the molecule. The bonding orbitals of CO are polarized toward the more electronegative oxygen end. A proton or a positive charge at carbon attracts electronic charge from the oxygen atom toward the carbon end, which leads to less polarized sigma- and pi-bonds and to a more covalent C-O bond. A positive charge or a proton at the oxygen atom has the opposite effect. The calculated curve of the C-O bond length in MCO+ (M = Li, Cu, Ag, Au) as a function of the M+-CO distance shows that the C-O bond becomes shorter in the beginning when the metal cation approaches the carbon atom. There is a turning point at shorter M+-CO distances where the C-O bond becomes longer again. The charge decomposition analysis shows that the position of the turning point is determined by the onset of the metal(+) --> CO back-donation. A relatively small amount of M+ --> CO back-donation is sufficient to lengthen the CO bond. The turning point for the curve of the C-O bond length as a function of the M+-CO distance occurs at a M+-CO value that is shorter than the equilibrium distance for M = Li and Ag, while it is longer for M = Cu and Au. The trends of the bond strengths and M+-CO interactions are explained with the radii and orbital energies of the valence ns and (n - 1)d orbitals of the transition metals.
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页码:9551 / 9559
页数:9
相关论文
共 75 条
[11]   PHOTOELECTRON SPECTROSCOPIC STUDY OF THE BONDING IN BORANE ADDUCTS [J].
BEACH, DB ;
JOLLY, WL .
INORGANIC CHEMISTRY, 1985, 24 (04) :567-570
[12]   THE USE OF SCALED MOMENTS OF INERTIA IN EXPERIMENTAL STRUCTURE DETERMINATIONS - EXTENSION TO SIMPLE MOLECULES CONTAINING HYDROGEN [J].
BERRY, RJ ;
HARMONY, MD .
JOURNAL OF MOLECULAR SPECTROSCOPY, 1988, 128 (01) :176-194
[13]   CALCULATION OF THE AVERAGE PROPERTIES OF ATOMS IN MOLECULES .2. [J].
BIEGLERKONIG, FW ;
BADER, RFW ;
TANG, TH .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1982, 3 (03) :317-328
[14]   BINDING-ENERGIES AND BOND DISTANCES OF NI(CO)X, X=1-4 - AN APPLICATION OF COUPLED-CLUSTER THEORY [J].
BLOMBERG, MRA ;
SIEGBAHN, PEM ;
LEE, TJ ;
RENDELL, AP ;
RICE, JE .
JOURNAL OF CHEMICAL PHYSICS, 1991, 95 (08) :5898-5905
[15]   THE CU-C BOND-DISSOCIATION ENERGY OF CUCH3 - A DRAMATIC FAILURE OF THE QCISD(T) METHOD [J].
BOHME, M ;
FRENKING, G .
CHEMICAL PHYSICS LETTERS, 1994, 224 (1-2) :195-199
[16]  
CIZEK J, 1966, J CHEM PHYS, V45, P4256
[17]  
Constable E. C., 1996, METALS LIGAND REACTI
[18]  
Cotton F. A., 1980, ADV INORGANIC CHEM
[19]   CHEMICAL-BONDS WITHOUT BONDING ELECTRON-DENSITY - DOES THE DIFFERENCE ELECTRON-DENSITY ANALYSIS SUFFICE FOR A DESCRIPTION OF THE CHEMICAL-BOND [J].
CREMER, D ;
KRAKA, E .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION IN ENGLISH, 1984, 23 (08) :627-628
[20]   INVESTIGATION OF DONOR-ACCEPTOR INTERACTIONS - A CHARGE DECOMPOSITION ANALYSIS USING FRAGMENT MOLECULAR-ORBITALS [J].
DAPPRICH, S ;
FRENKING, G .
JOURNAL OF PHYSICAL CHEMISTRY, 1995, 99 (23) :9352-9362