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首页> 外文期刊>Journal of Materials Science >Pd-based nanoflowers catalysts: controlling size, composition, and structures for the 4-nitrophenol reduction and BTX oxidation reactions
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Pd-based nanoflowers catalysts: controlling size, composition, and structures for the 4-nitrophenol reduction and BTX oxidation reactions

机译:钯基纳米花催化剂:控制4-硝基苯酚还原和BTX氧化反应的大小,组成和结构

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We describe herein the synthesis of solid Au@Pd and hollow AgPd nanoflowers displaying controlled sizes and compositions in order to investigate how their size, composition, and the presence of Au in the core of the nanoparticles influence their catalytic performance toward both liquid and gas-phase transformations. While the size and composition of Au@Pd and AgPd the nanoflowers could be controlled as function of growth time, their structure (solid or hollow) was dependent on the nature of the seeds employed for the synthesis, i.e., Au or Ag nanoparticles. Moreover, Au@Pd and AgPd nanoflowers were successfully supported onto commercial silica displaying truly uniform dispersion. The catalytic activities of Au@Pd and AgPd nanoflowers were investigated toward the 4-nitrophenol reduction and the benzene, toluene, and o-xylene (BTX) oxidation. The catalytic activities for the reduction of 4-nitrophenol decreased as follows: Au-58@Pd-42 > Au-27@Pd-73 > Ag20Pd80 and Ag8Pd92 > Au-12@Pd-88 > Ag38Pd62, suggesting that the Au core enhanced the catalytic activity relative to the hollow material when for Pd at.% was up to 80. Regarding the BTX oxidation, supported Au@Pd displayed higher catalytic activities than AgPd nanoflowers, also illustrating the role of the Au cores in the nanoflowers for improving catalytic performance. We believe these results may serve as a platform for the synthesis of Pd-based bimetallic nanomaterials that enable the correlation between these physical/chemical parameters and properties and thus optimized catalytic activities.
机译:我们在此描述显示出受控大小和组成的固态Au @ Pd和空心AgPd纳米花的合成,以研究其大小,组成以及纳米粒子核心中Au的存在如何影响其对液体和气体的催化性能。相变。尽管可以根据生长时间来控制Au @ Pd和AgPd的大小和组成,但它们的结构(实心或空心)取决于合成所用种子的性质,即Au或Ag纳米颗粒。此外,Au @ Pd和AgPd纳米花已成功负载到商业二氧化硅上,显示出真正均匀的分散性。研究了Au @ Pd和AgPd纳米花对4-硝基苯酚还原以及苯,甲苯和邻二甲苯(BTX)氧化的催化活性。还原4-硝基苯酚的催化活性降低如下:Au-58 @ Pd-42> Au-27 @ Pd-73> Ag20Pd80和Ag8Pd92> Au-12 @ Pd-88> Ag38Pd62,表明Au核增强Pd at。%时,相对于中空材料的催化活性高达80。关于BTX氧化,负载型Au @ Pd表现出比AgPd纳米花更高的催化活性,这也说明了Au核在纳米花中对改善催化的作用。性能。我们认为,这些结果可能为合成基于Pd的双金属纳米材料提供平台,从而使这些物理/化学参数与性能之间具有相关性,从而优化了催化活性。

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