126784-91-6Relevant academic research and scientific papers
Enantioselective biocatalytic oxidative desymmetrization of substituted pyrrolidines
Koehler, Valentin,Bailey, Kevin R.,Znabet, Anass,Raftery, James,Helliwell, Madeleine,Turner, Nicholas J.
supporting information; body text, p. 2182 - 2184 (2010/06/18)
"Chemical Equation Presented" Center stage: Additions of nitrogen-centered radicals to cyanamide compounds provided the first radical synthesis of aromatic polycyclic guanidine derivatives (see scheme). Modular assembly of the substrates allows for a rapid increase of the molecular complexity of scaffolds, which have potential applications for medicinal chemistry.
Iron-catalyzed, hydrogen-mediated reductive cyclization of 1,6-enynes and diynes: Evidence for bis(imino)pyridine ligand participation
Sylvester, Kevin T.,Chirik, Paul J.
supporting information; experimental part, p. 8772 - 8774 (2009/12/04)
(Chemical Equation Presented) The bis(imino)pyridine iron dinitrogen complex (iPrPDI)Fe(N2)2 catalyzes the hydrogen-mediated reductive cyclization of enynes and diynes with turnover frequencies comparable to those of established precious metal catalysts. Amino, oxygenated, and carbon-based substrates are readily cyclized to the corresponding hetero- and carbocycles with 5 mol % iron and 4 atm H2 at 23°C. Stoichiometric reactions between selected substrates and the iron compound under a N2 atmosphere established transfer dehydrogenation from an isopropyl aryl substituent to either the enyne or diyne substrate. In situ monitoring of the catalytic reaction by 1H NMR spectroscopy coupled with deuterium labeling experiments established rapid cyclization followed by turnoverlimiting hydrogenation. Copyright
Asymmetric desymmetrization of meso-pyrrolidine derivatives by enantiotopic selective C-H hydroxylation using (salen)manganese(III) complexes
Punniyamurthy,Katsuki, Tsutomu
, p. 9439 - 9454 (2007/10/03)
Chiral (salen)manganese(III) complexes 1 catalyzed the asymmetric desymmetrization of N-protected meso-pyrrolidine derivatives 3, 6-8, 15 and 18 by enantiotopic selective C-H oxidation in the presence of terminal oxidant iodosylbenzene. The oxidation occurred chemoselectively at the carbon α to the nitrogen atom to afford optically active hydroxypyrrolidine derivatives 9, 11, 13, 16, 19 and 21 that were further oxidized to chiral lactams with Jones reagent. The N-protecting groups of the meso-pyrrolidine derivatives have notable effect on the enantioselectivity.
