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Evidence for Metal-Surface Interactions and Their Role in Stabilizing Well-Defined Immobilized Ru-NHC Alkene Metathesis Catalysts

机译:金属表面相互作用及其在稳定定义良好的固定化Ru-NHC烯烃复分解催化剂中的作用的证据

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摘要

Secondary interactions are demonstrated to direct the stability of well-defined Ru-NHC-based heterogeneous alkene metathesis catalysts. By providing key stabilization of the active sites, higher catalytic performance is achieved. Specifically, they can be described as interactions between the metal center (active site) and the surface functionality of the support, and they have been detected by surface-enhanced ~1H-~(29)Si NMR spectroscopy of the ligand and ~(31)P solid-state NMR of the catalyst precursor. They are present only when the metal center is attached to the surface via a flexible linker (a propyl group), which allows the active site to either react with the substrate or relax, reversibly, to the surface, thus providing stability. In contrast, the use of a rigid linker (here mesitylphenyl) leads to a well-defined active site far away from the surface, stabilized only by a phosphine ligand which under reaction conditions leaves probably irreversibly, leading to faster decomposition and deactivation of the catalysts.
机译:二级相互作用被证明指导明确定义的基于Ru-NHC的非均相烯烃复分解催化剂的稳定性。通过提供关键的活性位点稳定化,可以实现更高的催化性能。具体而言,它们可以描述为金属中心(活性位点)与载体表面功能之间的相互作用,并且已通过配体和〜(31)的表面增强〜1H-〜(29)Si NMR光谱进行了检测。催化剂前体的1 P固态NMR。它们仅在金属中心通过柔性连接基(丙基)连接到表面时才存在,该连接基允许活性位点与底物反应或可逆地松弛到表面上,从而提供稳定性。相比之下,使用刚性连接基(此处为异丁基苯)会导致远离表面的明确定义的活性位点,仅由膦配体稳定,在反应条件下,膦配体可能不可逆地离开,从而导致催化剂更快地分解和失活。

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  • 来源
    《Journal of the American Chemical Society》 |2013年第8期|3193-3199|共7页
  • 作者单位

    C2P2, UMR 5265, Universite de Lyon, Institut de Chimie de Lyon, UMR 5265 CNRS-Universite Lyon 1-ESCPE Lyon, LC2P2, Equipe COMS, ESCPE Lyon, 69616 Villeurbanne, France;

    Institut Charles Gerhardt UMR 5352, Chimie Moleculaire et Organisation du Solide, Universite Montpellier 2, 34095 Montpellier Cedex 5, France;

    Department of Chemistry, ETH Zuerich, CH-8093 Zuerich, Switzerland;

    C2P2, UMR 5265, Universite de Lyon, Institut de Chimie de Lyon, UMR 5265 CNRS-Universite Lyon 1-ESCPE Lyon, LC2P2, Equipe COMS, ESCPE Lyon, 69616 Villeurbanne, France;

    Institut Charles Gerhardt UMR 5352, Chimie Moleculaire et Organisation du Solide, Universite Montpellier 2, 34095 Montpellier Cedex 5, France;

    C2P2, UMR 5265, Universite de Lyon, Institut de Chimie de Lyon, UMR 5265 CNRS-Universite Lyon 1-ESCPE Lyon, LC2P2, Equipe COMS, ESCPE Lyon, 69616 Villeurbanne, France;

    Centre de RMN a Tres Hauts Champs, Universite de Lyon (CNRS/ENS Lyon/UCB Lyon l), 69100 Villeurbanne, France;

    Centre de RMN a Tres Hauts Champs, Universite de Lyon (CNRS/ENS Lyon/UCB Lyon l), 69100 Villeurbanne, France;

    Centre de RMN a Tres Hauts Champs, Universite de Lyon (CNRS/ENS Lyon/UCB Lyon l), 69100 Villeurbanne, France;

    Department of Chemistry, ETH Zuerich, CH-8093 Zuerich, Switzerland;

    C2P2, UMR 5265, Universite de Lyon, Institut de Chimie de Lyon, UMR 5265 CNRS-Universite Lyon 1-ESCPE Lyon, LC2P2, Equipe COMS, ESCPE Lyon, 69616 Villeurbanne, France;

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