Yu Xiaoye, Lübbesmeyer Maximilian, Studer Armido
Organisch-Chemisches Institut, Westfälische Wilhelms-Universität, Corrensstrasse 40, 48149, Münster, Germany.
Angew Chem Int Ed Engl. 2021 Jan 11;60(2):675-679. doi: 10.1002/anie.202011738. Epub 2020 Oct 29.
Oligosilanes are of great interest in the fields of organic photonics and electronics. In this communication, a highly efficient visible-light-mediated hydrosilylation of electron-deficient alkenes through cleavage of a trimethylsilyl-polysilanyl Si-Si bond is explored. These reactions smoothly occur on readily available organo(tristrimethylsilyl)silanes and other oligosilanes in the presence of an Ir -based photo-redox catalyst under visible light irradiation. Silyl radicals are generated through single electron oxidation of the oligosilane assisted by the solvent. The introduced method exhibits broad substrate scope and high functional group tolerance with respect to the organo(tristrimethylsilyl)silane and alkene components, enabling the construction of functionalized trisilanes. In addition, this catalytic system can be also applied to highly strained bicyclo[1.1.0]butanes as silyl radical acceptors.
低聚硅烷在有机光子学和电子学领域具有极大的研究价值。在本通讯中,我们探索了通过三甲基硅基-聚硅烷基Si-Si键的断裂实现缺电子烯烃的高效可见光介导的硅氢化反应。在可见光照射下,这些反应在基于铱的光氧化还原催化剂存在下,能在容易获得的有机(三(三甲基硅基)硅烷)和其他低聚硅烷上顺利发生。硅基自由基是在溶剂辅助下通过低聚硅烷的单电子氧化产生的。所介绍的方法对于有机(三(三甲基硅基)硅烷)和烯烃组分具有广泛的底物范围和高官能团耐受性,能够构建功能化的三硅烷。此外,该催化体系还可应用于作为硅基自由基受体的高张力双环[1.1.0]丁烷。