Department of Materials Molecular Science, Institute for Molecular Science, 5-1 Higashiyama, Myodaiji, Okazaki 444-8787, Japan.
J Am Chem Soc. 2010 Jul 7;132(26):9138-43. doi: 10.1021/ja1028556.
This article describes the synthesis and functions of a porous catalytic framework based on conjugated micro- and mesoporous polymers with metalloporphyrin building blocks (FeP-CMP). FeP-CMP was newly synthesized via a Suzuki polycondensation reaction and was developed as a heterogeneous catalyst for the activation of molecular oxygen to convert sulfide to sulfoxide under ambient temperature and pressure. FeP-CMP is intriguing because the polymer skeleton itself is built from catalytic moieties and serves as built-in catalysts, bears inherent open nanometer-scale pores that are accessible for substrates, and possesses large surface areas (1270 m(2) g(-1)) that facilitate the transformation reaction. It is highly efficient with high conversion (up to 99%) and a large turnover number (TON = 97,320), is widely applicable to various sulfides covering from aromatic to alkyl and cyclic substrates, displays high selectivity (up to 99%) to form corresponding sulfoxides, and is highly chemoselective for the oxidation of a sulfide group even in the coexistence of other oxidative functionalities. Owing to the covalent linkages between catalytic sites in the frameworks, FeP-CMP can be recycled with good retention of its porous structure and allows for large-scale transformation. These unique characteristics clearly originate from the covalent porous catalytic framework structure and demonstrate the usefulness of CMPs in the exploration of built-in heterogeneous catalysts, a new potential of these materials that have thus far been reported to exhibit noteworthy gas adsorption functions.
本文描述了一种基于共轭微孔和介孔聚合物与金属卟啉构筑块(FeP-CMP)的多孔催化骨架的合成和功能。FeP-CMP 是通过 Suzuki 缩聚反应新合成的,被开发为一种非均相催化剂,用于在环境温度和压力下活化分子氧将硫化物转化为亚砜。FeP-CMP 很有趣,因为聚合物骨架本身是由催化部分构建的,并且作为内置催化剂,具有固有的纳米级开放孔,可用于底物,并且具有很大的表面积(1270 m2 g-1),有利于转化反应。它具有很高的效率,转化率高达 99%,转化率数(TON = 97,320)很大,广泛适用于各种从芳族到烷基和环状底物的硫化物,对形成相应的亚砜具有很高的选择性(高达 99%),并且即使在共存的情况下,对硫化物基团的氧化也具有很高的化学选择性其他氧化官能团。由于骨架中催化位点之间的共价键,FeP-CMP 可以回收,其多孔结构保持良好,并允许进行大规模转化。这些独特的特性显然源于共价多孔催化骨架结构,并证明了 CMP 在探索内置异相催化剂方面的有用性,这是迄今为止报道的这些材料具有值得注意的气体吸附功能的新潜力。