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聚硅烷固定化铑-铂双金属纳米颗粒作为高效芳烃加氢催化剂:合成、间歇和流动条件下的反应及反应机理

Polysilane-Immobilized Rh-Pt Bimetallic Nanoparticles as Powerful Arene Hydrogenation Catalysts: Synthesis, Reactions under Batch and Flow Conditions and Reaction Mechanism.

作者信息

Miyamura Hiroyuki, Suzuki Aya, Yasukawa Tomohiro, Kobayashi Shu

机构信息

Department of Chemistry, School of Science , The University of Tokyo , Hongo, Bunkyo-ku, Tokyo 113-0033 , Japan.

出版信息

J Am Chem Soc. 2018 Sep 12;140(36):11325-11334. doi: 10.1021/jacs.8b06015. Epub 2018 Aug 27.

Abstract

Hydrogenation of arenes is an important reaction not only for hydrogen storage and transport but also for the synthesis of functional molecules such as pharmaceuticals and biologically active compounds. Here, we describe the development of heterogeneous Rh-Pt bimetallic nanoparticle catalysts for the hydrogenation of arenes with inexpensive polysilane as support. The catalysts could be used in both batch and continuous-flow systems with high performance under mild conditions and showed wide substrate generality. In the continuous-flow system, the product could be obtained by simply passing the substrate and 1 atm H through a column packed with the catalyst. Remarkably, much higher catalytic performance was observed in the flow system than in the batch system, and extremely strong durability under continuous-flow conditions was demonstrated (>50 days continuous run; turnover number >3.4 × 10). Furthermore, details of the reaction mechanisms and the origin of different kinetics in batch and flow were studied, and the obtained knowledge was applied to develop completely selective arene hydrogenation of compounds containing two aromatic rings toward the synthesis of an active pharmaceutical ingredient.

摘要

芳烃的氢化反应不仅对于氢的储存和运输很重要,而且对于合成诸如药物和生物活性化合物等功能分子也很重要。在此,我们描述了以廉价的聚硅烷为载体开发用于芳烃氢化的多相Rh-Pt双金属纳米颗粒催化剂。该催化剂可在温和条件下用于间歇式和连续流动系统,具有高性能,并表现出广泛的底物通用性。在连续流动系统中,只需将底物和1个大气压的氢气通过装有催化剂的柱子即可获得产物。值得注意的是,在流动系统中观察到的催化性能比间歇系统中高得多,并且在连续流动条件下表现出极强的耐久性(连续运行>50天;周转数>3.4×10)。此外,研究了反应机理的细节以及间歇式和流动式中不同动力学的起源,并将所获得的知识应用于开发对含有两个芳环的化合物进行完全选择性芳烃氢化反应,以合成一种活性药物成分。

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