| Literature DB >> 31645723 |
Jiayuan Li1, Zhihan Zhang2, Lianqian Wu1, Wen Zhang1, Pinhong Chen1, Zhenyang Lin3, Guosheng Liu4.
Abstract
Methods for selective C-H bond functionalization have provided chemists with versatile and powerful toolboxes for synthesis, such as the late-stage modification of a lead compound without the need for lengthy de novo synthesis1-5. Cleavage of an sp3 C-H bond via hydrogen atom transfer (HAT) is particularly useful, given the large number of available HAT acceptors and the diversity of reaction pathways available to the resulting radical intermediate6-17. Site-selectivity, however, remains a formidable challenge, especially among sp3 C-H bonds with comparable properties. If the intermediate radical could be further trapped enantioselectively, this should enable highly site- and enantioselective functionalization of C-H bonds. Here we report a copper (Cu)-catalysed site- and enantioselective allylic C-H cyanation of complex alkenes, in which a Cu(II)-bound nitrogen (N)-centred radical plays the key role in achieving precise site-specific HAT. This method is shown to be effective for a diverse collection of alkene-containing molecules, including sterically demanding structures and complex natural products and pharmaceuticals.Entities:
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Year: 2019 PMID: 31645723 DOI: 10.1038/s41586-019-1655-8
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962