Palladium-catalyzed chemoselective allylic substitution, Suzuki-Miyaura cross-coupling, and allene formation of bifunctional 2-B(pin)-substituted allylic acetate derivatives

Chemistry. 2014 Sep 8;20(37):11726-39. doi: 10.1002/chem.201402353. Epub 2014 Jul 30.

Abstract

A formidable challenge at the forefront of organic synthesis is the control of chemoselectivity to enable the selective formation of diverse structural motifs from a readily available substrate class. Presented herein is a detailed study of chemoselectivity with palladium-based phosphane catalysts and readily available 2-B(pin)-substituted allylic acetates, benzoates, and carbonates. Depending on the choice of reagents, catalysts, and reaction conditions, 2-B(pin)-substituted allylic acetates and derivatives can be steered into one of three reaction manifolds: allylic substitution, Suzuki-Miyaura cross-coupling, or elimination to form allenes, all with excellent chemoselectivity. Studies on the chemoselectivity of Pd catalysts in their reactivity with boron-bearing allylic acetate derivatives led to the development of diverse and practical reactions with potential utility in synthetic organic chemistry.

Keywords: allenes; allylic substitution; chemoselectivity; cross-coupling; palladium.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Acetates / chemical synthesis*
  • Acetates / chemistry*
  • Alkadienes / chemical synthesis*
  • Alkadienes / chemistry*
  • Allyl Compounds / chemical synthesis*
  • Allyl Compounds / chemistry*
  • Catalysis
  • Models, Molecular
  • Molecular Structure
  • Palladium / chemistry*
  • Stereoisomerism

Substances

  • Acetates
  • Alkadienes
  • Allyl Compounds
  • propadiene
  • Palladium
  • allyl acetate