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首页> 外文期刊>Journal of Catalysis >Chemoselective hydrogenation of nitroarenes: Boosting nanoparticle efficiency by confinement within highly porous polymeric framework
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Chemoselective hydrogenation of nitroarenes: Boosting nanoparticle efficiency by confinement within highly porous polymeric framework

机译:硝基芳烃的化学选择性氢化:通过限制在高度多孔的聚合物框架内来提高纳米颗粒的效率

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摘要

We report for the first time 99.9% yield of aminocompounds and high TOFs (up to 61 s~(-1)) in the liquid-phase hydrogenation of several para-substituted (-OH,-OCH_3,-CH_3,-H,-Br,-Cl,-COOH and-NO_2) nitroaromatics over quasi-monodispersed (ca. 3.3 nm from microscopy and CO chemisorption) Pt nanoparticles (NPs) confined within a hyper cross-linked polystyrene (HPS) polymeric matrix (uniform pore size ~4.6 nm; 1065 m~2 g~(-1)). Taking the selective hydrogenation of p-chloronitrobenzene as a model reaction, an antipathetic structure sensitivity (i.e. up to a 3-fold TOF greater over larger, 1.6 → 3.3 nm, Pt NPs) has been established. Moreover, a higher activity and amine selectivity were attained at elevated pressures (1 → 20 bar) irrespective of the support (i.e. active carbon, Al_2O_3 and HPS). Nonetheless, while Pt/HPS shows high stability without any activity/selectivity loss in repeated reaction runs, the state-of-the-art active carbon and alumina-supported Pt catalysts underwent a decrease in activity as a result of metal leaching. Our results demonstrate the potential of HPS as a suitable support for tailoring metal nanoparticle size and circumvent undesirable metal leaching.
机译:我们首次报道了几种对位取代的(-OH,-OCH_3,-CH_3,-H,-)液相加氢中99.9%的氨基化合物和高TOFs(高达61 s〜(-1))的产率。准单分散(显微镜和CO化学吸附约3.3 nm)Pt纳米颗粒(NPs)上的Br,-Cl,-COOH和-NO_2)硝基芳族化合物被限制在高度交联的聚苯乙烯(HPS)聚合物基体内(孔径均匀〜 4.6 nm; 1065 m〜2 g〜(-1))。以对氯硝基苯的选择性加氢为模型反应,已建立了抗病结构敏感性(即在较大的1.6→3.3 nm Pt NPs范围内TOF最高可达3倍)。而且,与载体(即活性炭,Al_2O_3和HPS)无关,在升高的压力(1→20bar)下获得了更高的活性和胺选择性。尽管如此,尽管Pt / HPS在重复反应过程中显示出高稳定性而没有任何活性/选择性损失,但是由于金属浸出,现有技术的活性炭和氧化铝负载的Pt催化剂的活性降低。我们的结果证明了HPS作为调整金属纳米颗粒尺寸和避免不良金属浸出的合适载体的潜力。

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