4.8 Article

Phenanthroline-imine ligands for iron-catalyzed alkene hydrosilylation

期刊

CHEMICAL SCIENCE
卷 13, 期 9, 页码 2721-2728

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc06727c

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资金

  1. National Key R&D Program of China [2021YFA1500200]
  2. National Natural Science Foundation of China [21625204, 21971119, 22001129]
  3. 111 project of the Ministry of Education of China [B06005]
  4. National Program for Special Support of Eminent Professionals, Haihe Laboratory of Sustainable Chemical Transformations [YYJC202103]
  5. Key-Area Research and Development Program of Guangdong Province [2020B010188001]
  6. China Postdoctoral Science Foundation [2019M660972]
  7. Frontiers Science Center for New Organic Matter at Nankai University [63181206]

向作者/读者索取更多资源

Iron-catalyzed organic reactions have limitations compared to precious metal catalysts. This research develops novel iron complexes that can catalyze specific hydrosilylation reactions and provides insight into the mechanism. The crowded environment around the iron center plays a crucial role in the selectivity.
Iron-catalyzed organic reactions have been attracting increasing research interest but still have serious limitations on activity, selectivity, functional group tolerance, and stability relative to those of precious metal catalysts. Progress in this area will require two key developments: new ligands that can impart new reactivity to iron catalysts and elucidation of the mechanisms of iron catalysis. Herein, we report the development of novel 2-imino-9-aryl-1,10-phenanthrolinyl iron complexes that catalyze both anti-Markovnikov hydrosilylation of terminal alkenes and 1,2-anti-Markovnikov hydrosilylation of various conjugated dienes. Specifically, we achieved the first examples of highly 1,2-anti-Markovnikov hydrosilylation reactions of aryl-substituted 1,3-dienes and 1,1-dialkyl 1,3-dienes with these newly developed iron catalysts. Mechanistic studies suggest that the reactions may involve an Fe(0)-Fe(ii) catalytic cycle and that the extremely crowded environment around the iron center hinders chelating coordination between the diene and the iron atom, thus driving migration of the hydride from the silane to the less-hindered, terminal end of the conjugated diene and ultimately leading to the observed 1,2-anti-Markovnikov selectivity. Our findings, which have expanded the types of iron catalysts available for hydrosilylation reactions and deepened our understanding of the mechanism of iron catalysis, may inspire the development of new iron catalysts and iron-catalyzed reactions.

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