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A Combined Computational and Experimental Study of Rh-Catalyzed C-H Silylation with Silacyclobutanes: Insights Leading to a More Efficient Catalyst System

机译:硅酰丁烷碱催化C-H甲硅烷烷基化合物的组合计算与实验研究:富力催化剂系统的见解

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摘要

The study of new C-H silylation reagents and reactions remains an important topic. We reported that under Rh catalysis, silacyclobutanes (SCBs) for the first time were able to react with C(sp~2)-H and C(sp~3)-H bonds, however the underlying reasons for such a new reactivity were not understood. Through this combined computational and experimental study on C-H silylation with SCBs, we not only depict a reaction pathway that fully accounts for the reactivity and all the experimental findings but also streamline a more efficient catalyst that significantly improves the reaction rates and yields. Our key findings include: (l) the active catalytic species is a [Rh]-H as opposed to the previously proposed [Rh]-Cl; (2) the [Rh]-H is generated via a reductive elimination/β-hydride (β-H) elimination sequence, as opposed to previously proposed endocyclic β-H elimination; (3) the regio- and enantio-determining steps are identified; (4) and of the same importance, the discretely synthesized [Rh]-H is shown to be a more efficient catalyst. This work suggests that the [Rh]-H/diphosphine system should find further applications in C-H silylations involving SCBs.
机译:对新的C-H甲硅烷基化试剂和反应的研究仍然是一个重要的话题。我们认为,在RH催化下,第一次硅酰丁烷(SCBS)能够与C(SP〜2)-H和C(SP〜3)-H键反应,但是这种新的反应性的基本原因不是了解。通过这种组合的C-H甲硅烷基化合物与SCBS的组合和实验研究,我们不仅描绘了完全占反应性和所有实验结果的反应途径,而且还简化了一种更有效的催化剂,可显着提高反应速率和产率。我们的主要发现包括:(L)活性催化物质是[RH] -H,而不是先前提出的[RH] -Cl; (2)通过还原消除/β-氢化物(β-H)消除序列产生[rh] -H,而不是先前提出的环环β-H消除; (3)确定鉴定和浅析步骤; (4)和相同的重要性,分离合成的[rH] -H被显示为更有效的催化剂。这项工作表明,[rh] -h /二膦系统应在涉及SCB的C-H甲硅烷基地中找到进一步的应用。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第9期|3571-3582|共12页
  • 作者单位

    Lab of Computational Chemistry and Drug Design State Key Laboratory of Chemical Oncogenomics Peking University Shenzhen Graduate School Shenzhen 518055 China;

    MOE Key Laboratory of Bioorganic Phosphorus Chemistry and Chemical Biology and School of Pharmaceutical Sciences and Tsinghua-Peking Joint Centers for Life Sciences Tsinghua University Beijing 100084 China;

    Beijing National Laboratory for Molecular Sciences (BNLMS) Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education College of Chemistry Peking University Beijing 100871 China;

    Lab of Computational Chemistry and Drug Design State Key Laboratory of Chemical Oncogenomics Peking University Shenzhen Graduate School Shenzhen 518055 China Beijing National Laboratory for Molecular Sciences (BNLMS) Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education College of Chemistry Peking University Beijing 100871 China Shenzhen Bay Laboratory Shenzhen 518055 China;

    Lab of Computational Chemistry and Drug Design State Key Laboratory of Chemical Oncogenomics Peking University Shenzhen Graduate School Shenzhen S18055 China;

    Shenzhen Bay Laboratory Shenzhen 518055 China;

    Beijing National Laboratory for Molecular Sciences (BNLMS) Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education College of Chemistry Peking University Beijing 100871 China Shenzhen Bay Laboratory Shenzhen 518055 China;

    MOE Key Laboratory of Bioorganic Phosphorus Chemistry and Chemical Biology and School of Pharmaceutical Sciences and Tsinghua-Peking Joint Centers for Life Sciences Tsinghua University Beijing 100084 China;

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  • 正文语种 eng
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