Yang Yuting, Zhang Yuzhuo, Wang Tienan, Jing Xiaofei, Liu Yunling
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, Changchun 130012, P. R. China.
State Key Laboratory of Chemical Resource Engineering, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, P. R. China.
ACS Appl Mater Interfaces. 2023 Feb 10. doi: 10.1021/acsami.2c20602.
Porous aromatic frameworks (PAFs) with rich metal coordination sites are highly effective support materials for gold nanoparticles (AuNPs), which would not only prevent AuNPs agglomeration but also facilitate mass transfer during the catalytic process. In this work, PAF-160, -161, and -162 bearing diphosphine units are synthesized via the Friedel-Crafts alkylation reaction to act as efficient platforms for AuNPs immobilization. These PAFs possess high surface areas (up to 655 m g) together with excellent stabilities, and the different linkage lengths between P centers allow more scattered and accessible sites for gold coordination. In the resultant Au-PAFs, AuNPs with uniform sizes are stabilized dispersedly. The catalytic performances of these Au-PAFs are monitored by the reduction of 4-nitrophenol (4-NP), and all materials exhibit excellent catalytic activities on the reduction of 4-NP, especially Au-PAF-162 with the apparent rate constant () up to 0.019 s. Additionally, the reductions of various nitroarenes with different functional groups are explored and all Au-PAFs can convert most nitroaromatic derivatives to the corresponding arylamines with high conversions of 99%, in which the reaction mechanism is also proposed. Furthermore, a continuous catalytic device with Au-PAF-160 catalyst is explored, and Au-PAF-160 can convert 1-chloro-4-nitrobenzene, 2,6-dichoronitrobenzene and 1-chloro-2,4-dinitrobenzene into the corresponding amines in sequence in the continuous flow catalytic experiments. This work has enriched the variety of porous materials for noble metal immobilization and promotes their applications in heterogeneous catalysis.
具有丰富金属配位位点的多孔芳香框架材料(PAFs)是金纳米颗粒(AuNPs)非常有效的载体材料,它不仅可以防止AuNPs团聚,还能在催化过程中促进传质。在本工作中,通过傅克烷基化反应合成了带有二膦单元的PAF-160、-161和-162,作为固定AuNPs的有效平台。这些PAFs具有高比表面积(高达655 m²/g)以及优异的稳定性,并且P中心之间不同的连接长度为金配位提供了更多分散且可及的位点。在所得的Au-PAFs中,尺寸均匀的AuNPs稳定地分散着。通过4-硝基苯酚(4-NP)的还原反应监测这些Au-PAFs的催化性能,所有材料在4-NP还原反应中均表现出优异的催化活性,尤其是Au-PAF-162,其表观速率常数(k)高达0.019 s⁻¹。此外,还探索了各种带有不同官能团的硝基芳烃的还原反应,所有Au-PAFs都能将大多数硝基芳族衍生物转化为相应的芳胺,转化率高达99%,并提出了反应机理。此外,还探索了一种带有Au-PAF-160催化剂的连续催化装置,在连续流动催化实验中,Au-PAF-160可以依次将1-氯-4-硝基苯、2,6-二氯硝基苯和1-氯-2,4-二硝基苯转化为相应的胺。这项工作丰富了用于固定贵金属的多孔材料种类,并促进了它们在多相催化中的应用。