AI Article Synopsis

  • Transfer of electrophilic alkoxyl groups from tetrahydropyranyl monoperoxyacetals to organometallic reagents allows for efficient ether production, overcoming previous challenges with peroxide stability.
  • The method yields a variety of ethers, including alkyl, alkenyl, and aryl types, and operates without generating alkoxy radical intermediates, unlike traditional peroxide reactions.
  • Theoretical analysis indicates that the reaction mechanism likely involves a Lewis acid facilitating the insertion of organometallics into the O-O bond, rather than a straightforward nucleophilic substitution (SN2) process.

Article Abstract

Although transfer of electrophilic alkoxyl ("RO+") from organic peroxides to organometallics offers a complement to traditional methods for etherification, application has been limited by constraints associated with peroxide reactivity and stability. We now demonstrate that readily prepared tetrahydropyranyl monoperoxyacetals react with sp(3) and sp(2) organolithium and organomagnesium reagents to furnish moderate to high yields of ethers. The method is successfully applied to the synthesis of alkyl, alkenyl, aryl, heteroaryl, and cyclopropyl ethers, mixed O,O-acetals, and S,S,O-orthoesters. In contrast to reactions of dialkyl and alkyl/silyl peroxides, the displacements of monoperoxyacetals provide no evidence for alkoxy radical intermediates. At the same time, the high yields observed for transfer of primary, secondary, or tertiary alkoxides, the latter involving attack on neopentyl oxygen, are inconsistent with an SN2 mechanism. Theoretical studies suggest a mechanism involving Lewis acid promoted insertion of organometallics into the O-O bond.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4687849PMC
http://dx.doi.org/10.1021/acs.joc.5b02043DOI Listing

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