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A general copper-catalysed enantioconvergent C(sp 3 )-S cross-coupling via biomimetic radical homolytic substitution.

Yu TianXi-Tao LiJi-Ren LiuJian ChengAng GaoNing-Yuan YangZhuang LiKai-Xin GuoWei ZhangHan-Tao WenZhong-Liang LiQiang-Shuai GuXin HongXin-Yuan Liu
Published in: Nature chemistry (2023)
Although α-chiral C(sp 3 )-S bonds are of enormous importance in organic synthesis and related areas, the transition-metal-catalysed enantioselective C(sp 3 )-S bond construction still represents an underdeveloped domain probably due to the difficult heterolytic metal-sulfur bond cleavage and notorious catalyst-poisoning capability of sulfur nucleophiles. Here we demonstrate the use of chiral tridentate anionic ligands in combination with Cu(I) catalysts to enable a biomimetic enantioconvergent radical C(sp 3 )-S cross-coupling reaction of both racemic secondary and tertiary alkyl halides with highly transformable sulfur nucleophiles. This protocol not only exhibits a broad substrate scope with high enantioselectivity but also provides universal access to a range of useful α-chiral alkyl organosulfur compounds with different sulfur oxidation states, thus providing a complementary approach to known asymmetric C(sp 3 )-S bond formation methods. Mechanistic results support a biomimetic radical homolytic substitution pathway for the critical C(sp 3 )-S bond formation step.
Keyphrases
  • transition metal
  • ionic liquid
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  • mass spectrometry
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  • visible light
  • solid state