Ligand-accelerated enantioselective methylene C(sp 3 )–H bond activation
Author(s) -
Gang Chen,
Wei Gong,
Zhe Zhuang,
Michal S. Andrä,
YanQiao Chen,
Xin Hong,
YunFang Yang,
Tao Liu,
K. N. Houk,
JinQuan Yu
Publication year - 2016
Publication title -
science
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 12.556
H-Index - 1186
eISSN - 1095-9203
pISSN - 0036-8075
DOI - 10.1126/science.aaf4434
Subject(s) - enantioselective synthesis , chemistry , methylene , palladium , denticity , ligand (biochemistry) , stereochemistry , catalysis , medicinal chemistry , substrate (aquarium) , combinatorial chemistry , metal , organic chemistry , biochemistry , oceanography , receptor , geology
Effective differentiation of prochiral carbon-hydrogen (C-H) bonds on a single methylene carbon via asymmetric metal insertion remains a challenge. Here, we report the discovery of chiral acetyl-protected aminoethyl quinoline ligands that enable asymmetric palladium insertion into prochiral C-H bonds on a single methylene carbon center. We apply these palladium complexes to catalytic enantioselective functionalization of β-methylene C-H bonds in aliphatic amides. Using bidentate ligands to accelerate C-H activation of otherwise unreactive monodentate substrates is crucial for outcompeting the background reaction driven by substrate-directed cyclopalladation, thereby avoiding erosion of enantioselectivity. The potential of ligand acceleration in C-H activation is also demonstrated by enantioselective β-C-H arylation of simple carboxylic acids without installing directing groups.
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