Enantioselective cyanation of benzylic C–H bonds via copper-catalyzed radical relay
Author(s) -
Wen Zhang,
Fei Wang,
Scott D. McCann,
Dinghai Wang,
Pinhong Chen,
Shan S. Stahl,
Guosheng Liu
Publication year - 2016
Publication title -
science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 12.556
H-Index - 1186
eISSN - 1095-9203
pISSN - 0036-8075
DOI - 10.1126/science.aaf7783
Subject(s) - chemistry , enantioselective synthesis , cyanation , radical , catalysis , combinatorial chemistry , substrate (aquarium) , hydrogen atom abstraction , reagent , enantiomer , copper , enantiomeric excess , organic synthesis , photochemistry , medicinal chemistry , stereochemistry , organic chemistry , oceanography , geology
Direct methods for stereoselective functionalization of sp 3 -hybridized carbon-hydrogen [C(sp 3 )-H] bonds in complex organic molecules could facilitate much more efficient preparation of therapeutics and agrochemicals. Here, we report a copper-catalyzed radical relay pathway for enantioselective conversion of benzylic C-H bonds into benzylic nitriles. Hydrogen-atom abstraction affords an achiral benzylic radical that undergoes asymmetric C(sp 3 )-CN bond formation upon reaction with a chiral copper catalyst. The reactions proceed efficiently at room temperature with the benzylic substrate as limiting reagent, exhibit broad substrate scope with high enantioselectivity (typically 90 to 99% enantiomeric excess), and afford products that are key precursors to important bioactive molecules. Mechanistic studies provide evidence for diffusible organic radicals and highlight the difference between these reactions and C-H oxidations mediated by enzymes and other catalysts that operate via radical rebound pathways.
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