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Organometallic Ruthenium Nanoparticles: A Comparative Study of the Influence of the Stabilizer on their Characteristics and Reactivity

机译:有机金属钌纳米粒子:稳定剂对其特性和反应性影响的对比研究

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The use of metal nanoparticles as catalysts is a topic of growing interest at the frontier between homogeneous and heterogeneous catalysis. Metal nanoparticles are highly interesting systems owing to their high number of surface atoms, which give rise to numerous active sites. Furthermore, the surface properties of metal nanoparticles can be tuned by the addition of a stabilizer, for example, a polymer, a surfactant, or a ligand, or by combining a metal with a support to take profit of their synergy to orientate a catalytic reaction. Significant efforts are being made towards the synthesis of metal nanoparticles in general and, more precisely, towards the preparation of ligand-stabilized nanoparticles in which the size, shape, and surface state are controlled. Since ligands can modulate both the electronic and steric environment at the surface of the particles, numerous studies are presently devoted to analyze the influence of ligands on the stabilization of nanoparticles and on their surface properties. Such studies are of key importance to develop more active and selective nanocatalysts. In that context, ruthenium nanoparticles are candidates of choice as they can be characterized inter alia by nuclear magnetic resonance, as ruthenium displays little or no Knight shift and since they are active catalysts for hydrogenation reactions of, for example, arenes, olefins, and alkynes. In this Review, we present an overview of our group's efforts in the synthesis of ligand-stabilized ruthenium nanoparticles of controlled size and surface state using different types of ligands. We report the influence of nitrogen-, sulfur-, silicon-, phosphorus-and carbon-containing ligands as coordinating atoms to the metal surface, on their stabilization, as well as on their surface reactivity, in comparison with sterically-stabilized Ru nanoparticles prepared following the same organometallic approach, but using polymers or "nanoreactors" made of alcohols or ionic liquids that allow for control of the growth of the particles by a confinement effect. Nanoparticles of other metals are also described when appropriate.
机译:使用金属纳米颗粒作为催化剂是在均匀和异质催化之间的前沿生长兴趣的主题。由于其大量的表面原子,金属纳米颗粒是高度有趣的系统,这导致了许多活性位点。此外,可以通过添加稳定剂,例如聚合物,表面活性剂或配体,或者通过将金属与载体组合以利用其协同作用来进行催化反应来调节金属纳米颗粒的表面性质。 。通常旨在一般地对金属纳米颗粒合成的重大努力,更确切地说,朝向制备配体稳定的纳米颗粒,其中尺寸,形状和表面状态被控制。由于配体可以调节颗粒表面的电子和空间环境,并且目前致力于分析配体对纳米颗粒稳定的影响以及其表面性质的许多研究。这些研究具有重要的重要性,以发展更活跃和选择性纳米催化剂。在这种情况下,钌纳米颗粒是选择的候选者,因为它们可以以核磁共振尤其表征,因为钌显示出很少或没有骑士偏移,因为它们是用于例如芳烃,烯烃和炔烃的氢化反应的活性催化剂。在本综述中,我们概述了我们本集团在合成配体稳定的钌纳米粒子的控制尺寸和表面状态的合成的努力,使用不同类型的配体。我们报告氮气,硅,磷和碳和碳的配体作为与金属表面的协调原子的影响,以及与制备的间稳定的ru纳米颗粒相比它们的稳定化以及它们的表面反应性遵循相同的有机金属方法,但是使用聚合物或“纳米反应器”由醇或离子液体制成,允许通过限制效果控制颗粒的生长。当适当时也描述了其他金属的纳米颗粒。

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