Transition-metal-free chemo- and regioselective vinylation of azaallyls

被引:0
作者
Minyan Li
Osvaldo Gutierrez
Simon Berritt
Ana Pascual-Escudero
Ahmet Yeşilçimen
Xiaodong Yang
Javier Adrio
Georgia Huang
Eiko Nakamaru-Ogiso
Marisa C. Kozlowski
Patrick J. Walsh
机构
[1] Roy and Diana Vagelos Laboratories,Department of Chemistry
[2] Penn/Merck Laboratory for High-Throughput Experimentation,Department of Biochemistry and Biophysics
[3] University of Pennsylvania,undefined
[4] 231 South 34th Street,undefined
[5] EPR Laboratory,undefined
[6] University of Pennsylvania,undefined
[7] 422 Curie Boulevard,undefined
[8] Institute of Advanced Synthesis (IAS),undefined
[9] School of Chemistry and Molecular Engineering (SCME),undefined
[10] Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM),undefined
[11] Nanjing Tech University (Nanjing Tech),undefined
[12] 30 South Puzhu Road,undefined
来源
Nature Chemistry | 2017年 / 9卷
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摘要
Direct C(sp3)–C(sp2) bond formation under transition-metal-free conditions offers an atom-economical, inexpensive and environmentally benign alternative to traditional transition-metal-catalysed cross-coupling reactions. A new chemo- and regioselective coupling protocol between 3-aryl-substituted-1,1-diphenyl-2-azaallyl derivatives and vinyl bromides has been developed. This is the first transition-metal-free cross-coupling of azaallyls with vinyl bromide electrophiles and delivers allylic amines in excellent yields (up to 99%). This relatively simple and mild protocol offers a direct and practical strategy for the synthesis of high-value allylic amine building blocks that does not require the use of transition metals, special initiators or photoredox catalysts. Radical clock experiments, electron paramagnetic resonance studies and density functional theory calculations point to an unprecedented substrate-dependent coupling mechanism. Furthermore, an electron paramagnetic resonance signal was observed when the N-benzyl benzophenone ketimine was subjected to silylamide base, supporting the formation of radical species upon deprotonation. The unique mechanisms outlined herein could pave the way for new approaches to transition-metal-free C–C bond formations.
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页码:997 / 1004
页数:7
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