Boryl radical catalysis enables asymmetric radical cycloisomerization reactions.
Chang-Ling WangJie WangJi-Kang JinBin LiYee Lin PhangFeng-Lian ZhangTian YeHui-Min XiaLi-Wen HuiJi-Hu SuYao FuYi-Feng WangPublished in: Science (New York, N.Y.) (2023)
The development of functionally distinct catalysts for enantioselective synthesis is a prominent yet challenging goal of synthetic chemistry. In this work, we report a family of chiral N -heterocyclic carbene (NHC)-ligated boryl radicals as catalysts that enable catalytic asymmetric radical cycloisomerization reactions. The radical catalysts can be generated from easily prepared NHC-borane complexes, and the broad availability of the chiral NHC component provides substantial benefits for stereochemical control. Mechanistic studies support a catalytic cycle comprising a sequence of boryl radical addition, hydrogen atom transfer, cyclization, and elimination of the boryl radical catalyst, wherein the chiral NHC subunit determines the enantioselectivity of the radical cyclization. This catalysis allows asymmetric construction of valuable chiral heterocyclic products from simple starting materials.