6533b85afe1ef96bd12b8d09

RESEARCH PRODUCT

Theoretical investigation of the spin crossover transition states of the addition of methane to a series of Group 6 metallocenes using minimum energy crossing points

Jennifer C. GreenJeremy N. HarveyRinaldo Poli

subject

010405 organic chemistrychemistry.chemical_elementGeneral ChemistryElectronTungsten010402 general chemistry7. Clean energy01 natural sciencesTransition stateMethane0104 chemical sciencesAdduct[CHIM.THEO]Chemical Sciences/Theoretical and/or physical chemistrychemistry.chemical_compoundchemistry13. Climate actionSpin crossoverComputational chemistryPhysical chemistry[CHIM.COOR]Chemical Sciences/Coordination chemistrySinglet stateTriplet state

description

International audience; Density functional calculations are reported on the addition of methane to Group 6 metallocenes, M(η-C5H5)2 (M), M(CH2(η-C5H4)2) (a-M) and M(η-C5Me5)2 (M*) where M = Mo and W. Full geometry optimisations were carried out on the singlet and triplet 16 electron complexes, 1[M] and 3[M], the η2-methane complexes, 1[M(η2-CH4)], and the hydridomethyl adducts, 1[M(CH3)(H)]. The triplet state for [M] was found to be more stable for all six metallocenes, the difference being least in the case of the ansa-bridged system. Formation of the hydridomethyl complexes was exoenergetic for all tungsten systems and for a-Mo, the other two Mo systems being endoenergetic. Minumum energy crossing points (MECPs) between the triplet and singlet surfaces were calculated for Mo, W, a-W and W*. These MECPs formed the barrier to formation of the methane complex. Transition states for insertion of M into the C–H bond and exchange between the coordinated H of the methane complex were also calculated for Mo, W, a-W and W*. For W and W* these were of similar height to the MECP. For a-W the insertion barrier was lower than the MECP while for Mo it was higher. Activation of methane was established as being most favourable for a-W. The calculated results are fully in accord with published experimental data on hydrogen exchange in and thermal stablity of 1[M(CH3)(H)] where M = W, a-W and W*.

10.1039/b111257khttp://ora.ox.ac.uk/objects/uuid:4ef44b69-c4e5-4102-b459-66339a977e50