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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Catalytic Properties of AgPt Nanoshells as a Function of Size: Larger Outer Diameters Lead to Improved Performances
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Catalytic Properties of AgPt Nanoshells as a Function of Size: Larger Outer Diameters Lead to Improved Performances

机译:AgPt纳米壳的催化性能与尺寸的关系:较大的外径可提高性能

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We report herein a systematic investigation on the effect of the site of silver (Ag) nanoparticles employed as starting materials over the-morphological features and catalytic performances of AgPt nanoshells produced by a combination of galvanic-replacement between Ag and PtCl62- and PtCl62- reduction by hydroquinone. Mote specifically, we focused on Ag nanoparticles of four different sizes as starting materials, and found that the outer diameter, shell thickness, and the number of Pt surface atoms of the produced nanoshells increased with the size of the starting Ag nanoparticles. The produced AgPt nanoshells were supported into SiO2, and the catalytic performances of the AgPt/SiO2 nanocatalysts toward the gas-phase oxidation: of benzene, toluene, and o-xylene (BTX oxidation) followed the order: AgPt 163 nm/SiO2 > AgPt 133 nm/SiO2 > AgPt 105 nm/SiO2 > AgPt 95 nm/SiO2. Interestingly, bigger AgPt nanoshell sizes lead to better catalytic performances in contrast to the intuitive prediction that particles having larger outer diameters tend to present poorer catalytic activities due to their lower surface to volume ratios as compared to smaller particles.: This is in agreement with the H-2 chemisorption results, and can be assigned to the increase in the Pt surface area with size due to the presence of smaller NPs islands at the surface of the nanoshells having larger outer diameters. This result indicates that, in addition to the overall diameters, the optimization-of the surface morphology may play an important role over the optimization of catalytic activities in metal-based nanocatalysts, which can be even mote pronounced that the size effect. Our data demonstrate that the control over surface morphology play a very important role relative to the effect of size to the optimization of catalytic performances in catalysts based on noble-metal nanostructures.
机译:我们在这里报告系统的调查,银(Ag)纳米粒子的位置用作原料对Ag和PtCl62-和PtCl62-还原之间的电取代产生的AgPt纳米壳的形态特征和催化性能的影响对苯二酚。具体而言,我们以四种不同尺寸的Ag纳米颗粒为起始原料,发现随着制备的Ag纳米颗粒的尺寸,所制得的纳米壳的外径,壳厚度和Pt表面原子数均增加。将生成的AgPt纳米壳负载到SiO2中,并且AgPt / SiO2纳米催化剂对苯,甲苯和邻二甲苯(BTX氧化)的气相氧化的催化性能如下:AgPt 163 nm / SiO2> AgPt 133nm / SiO 2> AgPt 105nm / SiO 2> AgPt 95nm / SiO 2。有趣的是,与直观的预测相反,较大的AgPt纳米壳尺寸会导致更好的催化性能,因为直观的预测是,与较小的颗粒相比,具有较大外径的颗粒由于其较低的表面积与体积比而倾向于表现出较差的催化活性。 H-2化学吸附的结果,并且可以归因于Pt表面积随尺寸的增加,这是由于在具有较大外径的纳米壳表面上存在较小的NPs岛所致。该结果表明,除了总直径之外,表面形态的优化可能在基于金属的纳米催化剂中的催化活性的优化中起重要作用,甚至可以说是尺寸效应。我们的数据表明,相对于尺寸的影响,表面形态的控制在基于贵金属纳米结构的催化剂中优化催化性能方面起着非常重要的作用。

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