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Superelectrophilic activation of 4-heterocyclohexanones. Implications for polymer synthesis. A theoretical study. | LitMetric

Superelectrophilic activation of 4-heterocyclohexanones. Implications for polymer synthesis. A theoretical study.

J Phys Chem A

Instituto de Investigaciones en Materiales Universidad Nacional Autonoma de Mexico, Apartado Postal 70-360, CU, Coyoacan, Mexico DF 04510, México.

Published: December 2007

AI Article Synopsis

  • The study examines the stability and reactivity of mono- and diprotonated 4-heterocyclohexanones and cyclohexanone in triflic acid using advanced theoretical methods.
  • The first protonation typically occurs at a carbonyl oxygen, except in the case of 4-piperidone, which protonates a nitrogen atom first; the second protonation is generally less favorable, especially for cyclohexanone.
  • Diprotonated 4-heterocyclohexanones show greater reactivity in reactions with aromatic hydrocarbons compared to their monoprotonated counterparts, largely due to inductive effects, and the second protonation helps minimize undesired side reactions.

Article Abstract

The stability and the reactivity of mono- and diprotonated 4-heterocyclohexanones as well as cyclohexanone in triflic acid have been studied at the PBE0/aug-cc-pvtz//PBE0/6-31+G** level of theory. In all cases the first protonation is an exergonic process occurring at a carbonyl oxygen except for 4-piperidone where a nitrogen atom is protonated fist. Second protonation is only slightly endergonic for all studied molecules except for cyclohexanone where the second protonation is very unfavorable thermodynamically. According to calculations, diprotonated 4-heterocyclohexanones are much more active in the reactions of triflic acid mediated polyalkoxyalkylation with aromatic hydrocarbons compared to monoprotonated ones. The increase of the reactivity of diprotonated 4-heterocyclohexanones is due to inductive effect rather than through space electrostatic influence as follows from the electronic structure analysis of dications. Moreover, the second protonation reduces the possibility of an aldol condensation side reaction, reducing the enol electrophilicity rendering heterocyclohexanones as promising monomers for superacid mediated polyhydroxyalkylation.

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Source
http://dx.doi.org/10.1021/jp0745485DOI Listing

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