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Origin of the Breakthrough Productivity of Ruthenium-Cyclic Alkyl Amino Carbene Catalysts in Olefin Metathesis

机译:烯烃复分解中钌环烷基氨基碳烯催化剂突破性生产的起源

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摘要

Examined herein is the basis for the outstanding metathesis productivity of leading cyclic alkyl amino carbene (CAAC) catalysts relative to their important N-heterocyclic carbene (NHC) predecessors, as recently demonstrated in the topical contexts of metathesis macrocyclization and the ethenolysis of renewable oils. The difference is traced to the stability to decomposition of the metallacyclobutane (MCB) intermediate. The CAAC catalysts are shown to undergo little to no β-H elimination of the MCB ring, a pathway to which the H_(2)IMes catalysts are highly susceptible. Unexpectedly, however, the CAAC catalysts are found to be more susceptible to bimolecular coupling of the key intermediate RuCl_(2)(CAAC)(═CH_(2)), a reaction that culminates in elimination of the methylidene ligand as ethylene. Thus, an NMR study of transiently stabilized RuCl_(2)(L)(py)(═CH_(2)) complexes (L = CAAC or H_(2)IMes) revealed bimolecular decomposition of the CAAC derivative within 5 min at RT, as compared to a time scale of hours for the H_(2)IMes analogue. The remarkable productivity of the CAAC catalysts is thus due to their resistance to β-elimination, which enables their use at part per million loadings, and to the retarding effect of these low catalyst concentrations on bimolecular decomposition.
机译:相对于其重要的N杂环卡宾(NHC)前身,领先的环状烷基氨基卡宾(CAAC)催化剂具有出色的复分解生产率的基础已在本文中进行了检验,正如最近在复分解大环化和可再生油的乙烯化的主题研究中所证明的那样。差异可追溯到金属环环丁烷(MCB)中间体分解的稳定性。已显示,CAAC催化剂几乎不经历MCB环的β-H消除甚至没有消除,这是H_(2)IMes催化剂高度敏感的途径。然而,出乎意料的是,发现CAAC催化剂更容易受到关键中间体RuCl_(2)(CAAC)(═CH_(2))的双分子偶联的影响,该反应最终消除了亚甲基配体作为乙烯的反应。 。因此,对瞬态稳定的RuCl_(2)(L)(py)(═CH_(2))配合物(L = CAAC或H_(2)IMes)进行的NMR研究表明,在室温下5分钟内,CAAC衍生物发生了双分子分解,与H_(2)IMes类似物的小时时间标度相比。因此,CAAC催化剂具有非凡的生产率,这是因为它们具有抗β消除的能力(使其能够以百万分之几的量使用),以及这些低催化剂浓度对双分子分解的阻滞作用。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2019年第49期|19236-19240|共5页
  • 作者单位

    Center for Catalysis Research Innovation and Department of Chemistry and Biomolecular Sciences University of Ottawa;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 04:49:19

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