Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5418059 | Journal of Molecular Structure: THEOCHEM | 2008 | 9 Pages |
Abstract
Quantum chemical calculations at the gradient corrected DFT level using the exchange correlation functionals BP86 of the complexes [(dmpe)M(HBR2)] (M = Ni, Pd, Pt; R = Et, Me) are reported. The calculated electronic and molecular structures of the complexes [(dmpe)M(HBR2)] (M = Ni, Pd; R = Et, Me) are consistent with [(dmpe)M(η2-HBR2)] being Ni(0) and Pd(0) complexes in which both hydrogen and boron of the [HBR2] ligands have a bonding interaction with the metal preserving B-H bond character. The results of the theoretical investigation suggest that the complex [(dmpe)Pt(HBEt2)] is a platinum(II) hydride boryl complex rather than Ï-borane complex, while complex [(dmpe)Pt(HBMe2)] with some residual B-H interaction, is an example of elongated Ï-borane complex. The nature of the metal-ligand interactions is quantitatively analyzed with an energy decomposition analysis. The bond dissociation energy is slightly larger in [(dmpe)M(η2-HBMe2)] than in [(dmpe)M(η2-HBEt2)] (M = Ni, Pd). The values of interaction energy, ÎEint as well as orbital interactions ÎEorb decrease on going from nickel to palladium. For M-η2-H-BR2 (M = Ni, Pd) bonds, the contribution of electrostatic attractions ÎEelstat are greater than the orbital interactions, ÎEorb. The repulsive terms ÎEPauli were larger in each case. All four [(dmpe)M(HBR2)] (M = Ni, Pd; R = Et, Me) complexes exhibit about 40-44% covalent bonding of the borane ligand to the metal fragment. For the platinum complexes [(dmpe)Pt(HBR2)] (R = Et, Me), the preparation energy, ÎEprep as well as interaction energy, ÎEint and its components, ÎEPauli, ÎEelstat, and ÎEorb are large, since the HBR2 unit near the dissociation limit. The complex [(dmpe)Pt(HBMe2)] is intermediate between Ï-borane complexes and hydride boryl complex.
Related Topics
Physical Sciences and Engineering
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Physical and Theoretical Chemistry
Authors
Krishna K. Pandey,