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首页> 外文期刊>Journal of Catalysis >Pt-Zn nanoparticles supported on porous polymeric matrix for selective 3-nitrostyrene hydrogenation
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Pt-Zn nanoparticles supported on porous polymeric matrix for selective 3-nitrostyrene hydrogenation

机译:负载在多孔聚合物基质上的Pt-Zn纳米颗粒用于选择性3-硝基苯乙烯加氢

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摘要

We report the promoting effect of Zn on performance of Pt-based catalyst in liquid-phase hydrogenation of 3-nitrostyrene (3-NS) to 3-vinylaniline (3-VA). Bimetallic Pt-Zn nanoparticles (NPs) were prepared within the hypercross-linked polystyrene (HPS) support. The nanoporous structure of HPS allows a size control of Pt-Zn NPs by confining them in the cavities (ca. 4-5 nm) of the polymeric matrix. The TEM analysis showed that the mean size of the resulted metal particles (4.7 nm) corresponds to the HPS pore size. The properties of the bimetallic catalyst were assessed by IR spectroscopy of chemisorbed CO that suggested the modification of Pt surface and electronic structure invoked by Zn incorporation. The catalytic results demonstrated an increased yield of 3-VA over Pt-Zn/HPS catalyst (97%) relative to monometallic Pt/HPS (16%). This is the highest result reported over Pt catalysts for NS hydrogenation without any additional reaction modifiers. Furthermore, stability of Pt-Zn/HPS under reaction conditions was confirmed over repeated reaction runs. Our results demonstrate the Pt modification with Zn as efficient means to control 3-VA selectivity, whereas HPS serves as a suitable support to control NP size and avoid metal leaching. (c) 2014 Elsevier Inc. All rights reserved.
机译:我们报告了锌对Pt基催化剂在3-硝基苯乙烯(3-NS)液相加氢成3-乙烯基苯胺(3-VA)的性能方面的促进作用。在超交联聚苯乙烯(HPS)载体内制备了双金属Pt-Zn纳米颗粒(NPs)。 HPS的纳米孔结构通过将Pt-Zn NP限制在聚合物基体的腔体(约4-5 nm)中,可以控制Pt-Zn NP的尺寸。 TEM分析表明,所得金属颗粒的平均尺寸(4.7nm)对应于HPS孔径。通过化学吸附的CO的红外光谱对双金属催化剂的性能进行了评估,这表明通过掺入Zn可以激活Pt表面和电子结构。催化结果表明,相对于单金属Pt / HPS(16%),Pt-Zn / HPS催化剂(97%)的3-VA收率提高。这是在不使用任何其他反应改性剂的情况下,用于Ps催化剂进行NS加氢的最高结果。此外,通过重复的反应运行证实了Pt-Zn / HPS在反应条件下的稳定性。我们的结果表明,用Zn修饰Pt是控制3-VA选择性的有效手段,而HPS则是控制NP尺寸和避免金属浸出的合适载体。 (c)2014 Elsevier Inc.保留所有权利。

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