A. Rochefort et R. Fournier, QUANTUM-CHEMICAL STUDY OF CO AND NO BONDING TO PD-2, CU-2, AND PDCU, Journal of physical chemistry, 100(32), 1996, pp. 13506-13513
The bonding of CO and NO to the dimers Pd-2, Cu-2, and PdCu was studie
d with the quantum chemical linear combination of Gaussian-type orbita
ls-model core potential-density functional (LCGTO-MCP-DF) method. Bond
ing occurs preferably at the bridge site on Pd and at the linear end-o
n site on Cu-2. On PdCu, CO binds in a bridge or a-top geometry on Pd,
while NO binds preferably in The a-top fashion. The binding energy of
CO and NO to the Pd (Cu) atom of PdCu is slightly smaller (larger) th
an that for the homonuclear dimer Pd-2 (Cu-2), These trends are in lin
e with the propensity to back-donation of the various metal dimers. Th
e geometry of the complexes is determined by the back-donation and by
the ability of the metal to accommodate the incoming ligand charge (sm
allest for Cu-2, largest for Pd-2). In PdCuL (L = CO, NO) the sigma-si
gma repulsion is reduced by an increased participation of the 4p sigma
orbital in accepting the lone pair. In contrast, the lack of Pd hybri
dization in CuPdL precludes an efficient donation to Pd. We discuss tr
ends in bond lengths, angles, and vibrational frequencies in relation
to the magnitude of the sigma-sigma repulsion and attractive pi-pi int
eraction.