Jm. Fraile et al., Theoretical (DFT) insights into the mechanism of copper-catalyzed cyclopropanation reactions. implications for enantioselective catalysis, J AM CHEM S, 123(31), 2001, pp. 7616-7625
The mechanism of the copper(I)-catalyzed cyclopropanation reaction has been
extensively investigated for a medium-size reaction model by means of B3LY
P/6-31G(d) calculations. The starting ethylene complex of the N,N'-dimethyl
malonaldiimine-copper (I) catalyst undergoes a ligand exchange with methyl
diazoacetate to yield a reaction intermediate, which subsequently undergoes
nitrogen extrusion to Generate a copper-carbene complex. The cyclopropanat
ion step takes place through a direct carbene insertion of the metal-carben
e species to yield a catalyst-product complex, which can finally regenerate
the starting complex. The stereochemical predictions of a more realistic m
odel (by considering a chiral bis(oxazoline)-copper (I) catalyst) have been
rationalized in terms of steric repulsions, showing good agreement with ex
perimental data.