| Literature DB >> 31548670 |
Xia-Ping Fu1, Xiao-Song Xue2,3, Xue-Ying Zhang1, Yu-Lan Xiao1, Shu Zhang4, Yin-Long Guo1, Xuebing Leng1, Kendall N Houk5, Xingang Zhang6.
Abstract
Difluorocarbene has important applications in pharmaceuticals, agrochemicals and materials, but all these applications proceed using just a few types of reaction by taking advantage of its intrinsic electrophilicity. Here, we report a palladium-catalysed strategy that confers the formed palladium difluorocarbene (Pd=CF2) species with both nucleophilicity and electrophilicity by switching the valence state of the palladium centre (Pd(0) and Pd(II), respectively). Controllable catalytic difluorocarbene transfer occurs between readily available arylboronic acids and the difluorocarbene precursor diethyl bromodifluoromethylphosphonate (BrCF2PO(OEt)2). From just this simple fluorine source, difluorocarbene transfer enables access to four types of product: difluoromethylated and tetrafluoroethylated arenes and their corresponding fluoroalkylated ketones. The transfer can also be applied to the modification of pharmaceuticals and agrochemicals as well as the one-pot diversified synthesis of fluorinated compounds. Mechanistic and computational studies consistently reveal that competition between nucleophilic and electrophilic palladium difluorocarbene ([Pd]=CF2) is the key factor controlling the catalytic difluorocarbene transfer.Entities:
Year: 2019 PMID: 31548670 DOI: 10.1038/s41557-019-0331-9
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427