Journal of the American Chemical Society, volume 142, issue 42, pages 18014-18021
Copper-Catalyzed Enantioselective Radical 1,4-Difunctionalization of 1,3-Enynes.
Yuehua Zeng
1
,
Mong Feng Chiou
1
,
Xiaotao Zhu
1, 2
,
Jie Cao
1
,
Daqi Lv
1
,
Wujun Jian
1
,
Yajun Li
1
,
Xinhao Zhang
3, 4
,
Hongli Bao
1, 2
4
Shenzhen Bay Laboratory, Shenzhen 518055, People’s Republic of China
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Publication type: Journal Article
Publication date: 2020-10-09
scimago Q1
SJR: 5.489
CiteScore: 24.4
Impact factor: 14.4
ISSN: 00027863, 15205126
PubMed ID:
33035049
General Chemistry
Catalysis
Biochemistry
Colloid and Surface Chemistry
Abstract
Chiral allenes are important structural motifs frequently found in natural products, pharmaceuticals, and other organic compounds. Asymmetric 1,4-difunctionalization of 1,3-enynes is a promising strategy to construct axial chirality and produce substituted chiral allenes from achiral substrates. However, the previous state of the art in 1,4-difunctionalization of 1,3-enynes focused on the allenyl anion pathway. Because of this, only electrophiles can be introduced into the allene backbones in the second functionalization step, consequently limiting the reaction and allene product types. The development of asymmetric 1,4-difunctionalization of 1,3-enynes via a radical pathway would complement previous methods and support expansion of the toolbox for the synthesis of asymmetric allenes. Herein, we report the first radical enantioselective allene formation via a group transfer pathway in the context of copper-catalyzed radical 1,4-difunctionalization of 1,3-enynes. This method addresses a longstanding unsolved problem in asymmetric radical chemistry, provides an important strategy for stereocontrol with free allenyl radicals, and offers a novel approach to the valuable, but previously inaccessible, chiral allenes. This work should shed light on asymmetric radical reactions and may lead to other enantioselective group transfer reactions.
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