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Catalytic Aerobic Oxidation of Alcohols by Copper Complexes Bearing Redox-Active Ligands with Tunable H-Bonding Groups.

Khashayar RajabimoghadamYousef DarwishUmyeena BashirDylan PitmanSidney EichelbergerMaxime A SieglerMarcel SwartIsaac Garcia-Bosch
Published in: Journal of the American Chemical Society (2018)
In this research article, we describe the structure, spectroscopy, and reactivity of a family of copper complexes bearing bidentate redox-active ligands that contain H-bonding donor groups. Single-crystal X-ray crystallography shows that these tetracoordinate complexes are stabilized by intramolecular H-bonding interactions between the two ligand scaffolds. Interestingly, the Cu complexes undergo multiple reversible oxidation-reduction processes associated with the metal ion (CuI, CuII, CuIII) and/or the o-phenyldiamido ligand (L2-, L•-, L). Moreover, some of the CuII complexes catalyze the aerobic oxidation of alcohols to aldehydes (or ketones) at room temperature. Our extensive mechanistic analysis suggests that the dehydrogenation of alcohols occurs via an unusual reaction pathway for galactose oxidase model systems, in which O2 reduction occurs concurrently with substrate oxidation.
Keyphrases
  • room temperature
  • electron transfer
  • hydrogen peroxide
  • high resolution
  • high intensity
  • magnetic resonance
  • ionic liquid
  • solid state
  • quantum dots
  • dual energy
  • electron microscopy