TY - JOUR
T1 - Oxidative Substitution of Organocopper(II) by a Carbon-Centered Radical
AU - Weng, Yuecheng
AU - Jin, Yuxuan
AU - Wu, Jian
AU - Leng, Xuebing
AU - Lou, Xiaobing
AU - Geng, Fushan
AU - Hu, Bingwen
AU - Wu, Botao
AU - Shen, Qilong
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/8/21
Y1 - 2024/8/21
N2 - Copper-catalyzed coupling reactions of alkyl halides are believed to prominently involve copper(II) species and alkyl radicals as pivotal intermediates, with their exact interaction mechanism being the subject of considerable debate. In this study, a visible light-responsive fluoroalkylcopper(III) complex, [(terpy)Cu(CF3)2(CH2CO2tBu)] Trans-1, was designed to explore the mechanism. Upon exposure to blue LED irradiation, Trans-1 undergoes copper-carbon bond homolysis, generating Cu(II) species and carbon-centered radicals, where the carbon-centered radical then recombines with the Cu(II) intermediate, resulting in the formation of Cis-1, the Cis isomer of Trans-1. Beyond this, a well-defined fluoroalkylcopper(II) intermediate ligated with a sterically hindered ligand was isolated and underwent full characterization and electronic structure studies. The collective experimental, computational, and spectroscopic findings in this work strongly suggest that organocopper(II) engages with carbon-centered radicals via an “oxidative substitution” mechanism, which is likely the operational pathway for copper-catalyzed C-H bond trifluoromethylation reactions.
AB - Copper-catalyzed coupling reactions of alkyl halides are believed to prominently involve copper(II) species and alkyl radicals as pivotal intermediates, with their exact interaction mechanism being the subject of considerable debate. In this study, a visible light-responsive fluoroalkylcopper(III) complex, [(terpy)Cu(CF3)2(CH2CO2tBu)] Trans-1, was designed to explore the mechanism. Upon exposure to blue LED irradiation, Trans-1 undergoes copper-carbon bond homolysis, generating Cu(II) species and carbon-centered radicals, where the carbon-centered radical then recombines with the Cu(II) intermediate, resulting in the formation of Cis-1, the Cis isomer of Trans-1. Beyond this, a well-defined fluoroalkylcopper(II) intermediate ligated with a sterically hindered ligand was isolated and underwent full characterization and electronic structure studies. The collective experimental, computational, and spectroscopic findings in this work strongly suggest that organocopper(II) engages with carbon-centered radicals via an “oxidative substitution” mechanism, which is likely the operational pathway for copper-catalyzed C-H bond trifluoromethylation reactions.
UR - https://www.scopus.com/pages/publications/85200899628
U2 - 10.1021/jacs.4c07552
DO - 10.1021/jacs.4c07552
M3 - 文章
C2 - 39116098
AN - SCOPUS:85200899628
SN - 0002-7863
VL - 146
SP - 23555
EP - 23565
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 33
ER -