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DOI: 10.1055/a-1674-6564
Cobalt-Catalyzed Hydroxyperfluoroalkylation of Alkenes with Perfluoroalkyl Bromides and Atmospheric Oxygen
We would like to thank the National Natural Science Foundation of China (Grant 22001008 to Q.L., 21971260 to S.L.), the Natural Science Foundation of Anhui Province (Grant 2008085QB61) and Anhui Agricultural University (RC381902, 2019zd13) to Q.L., Natural Science Foundation of Guangdong Province for Distinguished Young Scholars (2018B030306018), the Program for Guangdong Introducing Innovative and Entrepreneurial Teams (2017ZT07C069), the Pearl River Talent Recruitment Program of Guangdong Province (2019QN01L111) and the Open Fund of the Key Laboratory of Functional Molecular Engineering of Guangdong Province, South China University of Technology (No. 2018kf04) to S.L., Innovation Projects of Zhengzhou Tobacco Research Institute (442020CR0320 to W.F.).
Abstract
A mild and efficient method for the cobalt-catalyzed hydroxyperfluoroalkylation of alkenes has been developed. This method demonstrated broad substrate scope, good yields, and mild conditions with the tolerance of mono-, di-, and trisubstituted alkenes including both styrenes and non-activated aliphatic olefins. This strategy offered a valuable solution for rapid and efficient construction of β-perfluoroalkyl alcohols using widely available and inexpensive perfluoroalkyl bromides and atmospheric oxygen.
Supporting Information
- Supporting information for this article is available online at https://doi.org/10.1055/a-1674-6564.
- Supporting Information
Publication History
Received: 27 September 2021
Accepted after revision: 20 October 2021
Accepted Manuscript online:
20 October 2021
Article published online:
22 November 2021
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