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Synthesis and activation of Pt nanoparticles with controlled size for fuel cell electrocatalysts

机译:燃料电池电催化剂尺寸可控的Pt纳米粒子的合成与活化

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Well-dispersed Pt nanoparticles with controlled size and narrow size distribution were prepared by polyalcohol reduction of platinum acetylacet-onate, using oleylamine as a capping agent. The particle size was varied from 3.5 nm to 11.5 nm by decreasing the amount of oleylamine added in the synthesis. Size selection of the as-prepared particles by solvent fractionation yielded nearly monodispersed Pt particles. The as-prepared particles were loaded on a carbon support by physical deposition, but showed no electrocatalytic activity due to the oleylamine bound to the particle surface. The particles were activated for electrocatalysis after heating the particles in air at 185 ℃ for 5h, conditions that gave no particle-sintering and no oxidation. Cyclic voltammetry showed that the particles after the heat treatment in air were electrocatalytically active for methanol oxidation. The smaller 3.5 nm and 4.0 nm Pt particles had a higher intrinsic activity for methanol oxidation, but a lower tolerance to CO poisoning, compared with 6.0 nm, 9.5 nm and 11.5 nm particles. CO-stripping results suggest that CO is more easily oxidized on larger Pt particles.
机译:使用油胺作为封端剂,通过多元醇还原乙酰丙酮铂的制备,制备了尺寸可控且尺寸分布较窄的分散良好的Pt纳米颗粒。通过减少合成中添加的油胺的量,将粒径从3.5nm改变为11.5nm。通过溶剂分馏对所制备的颗粒的尺寸选择产生了几乎单分散的Pt颗粒。所制备的颗粒通过物理沉积负载在碳载体上,但是由于油胺结合到颗粒表面而没有显示出电催化活性。将粒子在空气中于185℃加热5h后,该粒子被激活以进行电催化,该条件不产生粒子烧结且不氧化。循环伏安法表明,在空气中热处理后的颗粒对甲醇氧化具有电催化活性。与6.0 nm,9.5 nm和11.5 nm颗粒相比,较小的3.5 nm和4.0 nm Pt颗粒具有较高的甲醇氧化固有活性,但对CO中毒的耐受性较低。 CO汽提结果表明,在较大的Pt颗粒上,CO更容易被氧化。

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