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Published on: July 28, 2022
Regioselectivity of the Reaction between β-Enamino Diketones and Methylhydrazine Explained
Vinicius Martinelli1, Isaac F Leach2, Julia Poletto1
1Departamento de Química, Universidade Estadual de Maringá, 87020-900 Maringá, Brasil.
Abstract:
The complete mechanism for the reaction of β-enamino diketone (BED) with methylhydrazine in H2O/MeOH and acetonitrile is elucidated via state-of-the-art quantum chemical calculations. Our results show that the mechanism branches into multiple pathways with distinct energetic profiles, leading to a product distribution governed by a delicate balance of electronic effects. The initial branching point is determined by which the nitrogen atom of the asymmetric methylhydrazine (NH2 or NHMe) attacks the BED β-carbon. Following the elimination of HNMe2, a cyclization step occurs, where the remaining methylhydrazine nitrogen attacks one of two distinct carbonyl carbons, leading to a product distribution, where three of four possible regioisomers are observed experimentally. The activation energy for this cyclization is influenced by the electronic properties of the substituents on both the carbonyl carbon (methoxycarbonyl or chlorophenyl) and the nucleophilic nitrogen (H or Me). Critically, this cyclization is contingent on a proton transfer from nitrogen to the carbonylic oxygen, promoted by a proton transfer catalyst (PTC). In H2O/MeOH, the protic solvent molecules act catalytically, whereas in acetonitrile, an acidic nitrogen center, as in methylhydrazine or dimethylamine, is required. The importance of the proton transfer catalyst is confirmed by experimentally determined product ratios of the reaction in acetonitrile with catalytic acetic acid.
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