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Metallic nanoparticles immobilized in magnetic metal-organic frameworks: preparation and application as highly active, magnetically isolable and reusable catalysts

机译:固定在磁性金属有机框架中的金属纳米颗粒:制备和应用是高度活性,磁性可分离且可重复使用的催化剂

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摘要

Separation and recycling of catalysts after catalytic reactions are critically required to reduce the cost of catalysts as well as to avoid the generation of waste in industrial applications. In this paper, ultrafine noble metallic nanoparticles are incorporated into cauliflower-like porous magnetic metal-organic frameworks (MOFs). With the restriction effects of the pore/surface structure in the MOFs, "surfactant-free" metallic nanoparticles are successfully obtained on a 2-3 nm scale. In addition, both the thickness of MOFs shell and the content of noble metallic NPs are tunable on the MOFs coating. Moreover, the microspheres exhibit excellent performance for the catalytic reduction of p-nitrophenol with a turnover frequency of 3094 h~(-1). The uniform cavities in the MOFs shell provide docking sites for p-nitrophenol and act as confinement nanoreactors, which greatly improves the catalytic performance. Most importantly, the magnetically responsive microspheres can be easily recovered by a magnetic field and show excellent reusability. The as-prepared catalyst also shows good activity for the reduction of other nitrobenzenes. Consequently, this work provides a highly active, magnetically isolable, and recyclable catalyst, which can be used for various catalytic industrial processes. The fundamental model can be further employed in a variety of biomedical fields including drug delivery and biological molecules separation.
机译:催化反应后催化剂的分离和回收需要严重降低催化剂的成本,并避免在工业应用中产生废物。在本文中,将超级贵族金属纳米颗粒纳入了花椰菜样的多孔磁性金属有机框架(MOF)中。由于MOF中孔/表面结构的限制效应,“无表面活性剂”金属纳米颗粒成功地以2-3 nm的比例获得。另外,MOFS壳的厚度和高贵金属NP的含量在MOFS涂层上都是可调的。此外,微球对P-硝基苯酚的催化频率的催化频率为3094 H〜(-1)表现出色。 MOFS壳中的均匀腔提供了p-硝基苯酚的对接位点,并充当约束纳米反应器,从而极大地改善了催化性能。最重要的是,磁性响应的微球可以通过磁场轻松恢复并显示出极好的可重复性。准备的催化剂还显示出良好的活性,可减少其他硝基苯烯。因此,这项工作提供了高度活跃,可隔离和可回收的催化剂,可用于各种催化工业过程。基本模型可以进一步用于多种生物医学领域,包括药物输送和生物分子分离。

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