Gallium halides as alternative ligands to CO and N2 in transition metal complexes: A bonding analysis

José A. Gámez, Ralf Tonner, Gernot Frenking

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24 Scopus citations

Abstract

Quantum chemical calculations using gradient-corrected DFT at the BP86/TZ2P+ level have been carried out for the gallium halide complexes [Fe(CO)4(GaX)] (X = F-I) and for [Fe(CO)5] and [Fe(CO)]4(N2)]. The nature of the metal-ligand bond has been investigated with an energy decomposition analysis. The Fe-GaX bonds in [Fe(CO)4(GaX)] have rather high bond dissociation energies that are smaller than the BDE of [Fe(CO)5] but larger than the BDE of [Fe(CO)]4(N2)]. The axial isomer of [Fe(CO) 4(GaF)] is predicted to be slightly more stable than the equatorial form, while the equatorial isomers of the heavier halogen systems [Fe(CO) 4(GaX)] (X = Cl-I) are a bit lower in energy than the axial form. The energy difference between the two isomers is for all gallium complexes [Fe(CO)4(GaX)] smaller than 1.0 kcal/mol. The ratio of covalent bonding and electrostatic attraction in the (CO)4Fe-GaX bonds is very similar to the values that are calculated for the (CO)4Fe-CO and (CO)4Fe-N2 bonds. The analysis of the bonding situation reveals that the σ-donation of the ligands GaX is much stronger than the π-back-donation, while the (CO)4Fe-CO and (CO)4Fe- N2 bonds possess equally strong contributions from σ-donation and π-back-donation. The GaX and N2 ligands induce stronger Fe-COtrans bonds in the axial isomers of [Fe(CO)4(GaX)] and [Fe(CO)]4(N2)]: L(CO)3Fe→CO trans π-back-donation.

Original languageEnglish
Pages (from-to)5676-5680
Number of pages5
JournalOrganometallics
Volume29
Issue number21
DOIs
StatePublished - 8 Nov 2010
Externally publishedYes

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