Abstract
The geometries, metal-ligand bond dissociation energies, and heats of formation of twenty sandwich and half-sandwich complexes of the main-group elements of Groups 1, 2, 13, and 14, and Zn have been calculated with quantum chemical methods. The geometries of the [E(Cp)] and [E(Cp)2] complexes were optimized using density functional theory at the BP86 level with valence basis sets, which have DZP and TZP quality. Improved energy values have been obtained by using coupled-cluster theory at the CCSD(T) level. The nature of the metal-ligand bonding has been analyzed with an energy-partitioning method. The results give quantitative information about the strength of the covalent and electrostatic interactions between En+ and (Cp-)n (n=1, 2). The contributions of the orbitals with different symmetry to the covalent bonding are also given.
Original language | English |
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Pages (from-to) | 4693-4707 |
Number of pages | 15 |
Journal | Chemistry - A European Journal |
Volume | 8 |
Issue number | 20 |
DOIs | |
State | Published - 18 Oct 2002 |
Externally published | Yes |
Keywords
- Bond energy
- Bonding analysis
- Density functional calculations
- Heats of formation
- Metallocenes