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首页> 外文期刊>Journal of nanomaterials >A Platinum Monolayer Core-Shell Catalyst with a Ternary Alloy Nanoparticle Core and Enhanced Stability for the Oxygen Reduction Reaction
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A Platinum Monolayer Core-Shell Catalyst with a Ternary Alloy Nanoparticle Core and Enhanced Stability for the Oxygen Reduction Reaction

机译:具有三元合金纳米粒子核和增强的氧还原反应稳定性的铂单层核-壳催化剂

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摘要

We synthesize a platinum monolayer core-shell catalyst with a ternary alloy nanoparticle core of Pd, Ir, and Ni. A Pt monolayer is deposited on carbon-supported PdIrNi nanoparticles using an underpotential deposition method, in which a copper monolayer is applied to the ternary nanoparticles; this is followed by the galvanic displacement of Cu with Pt to generate a Pt monolayer on the surface of the core. The core-shell Pd1Ir1Ni2@Pt/C catalyst exhibits excellent oxygen reduction reaction activity, yielding a mass activity significantly higher than that of Pt monolayer catalysts containing PdIr or PdNi nanoparticles as cores and four times higher than that of a commercial Pt/C electrocatalyst. In 0.1 M HClO4, the half-wave potential reaches 0.91 V, about 30 mV higher than that of Pt/C. We verify the structure and composition of the carbon-supported PdIrNi nanoparticles using X-ray powder diffraction, X-ray photoelectron spectroscopy, thermogravimetry, transmission electron microscopy, and energy dispersive X-ray spectrometry, and we perform a stability test that confirms the excellent stability of our core-shell catalyst. We suggest that the porous structure resulting from the dissolution of Ni in the alloy nanoparticles may be the main reason for the catalyst’s enhanced performance.
机译:我们合成了具有Pd,Ir和Ni的三元合金纳米粒子核的铂单层核壳催化剂。使用欠电位沉积法将Pt单层沉积在碳负载的PdIrNi纳米粒子上,其中将铜单层应用于三元纳米粒子。接下来是用Pt对Cu进行电流置换,以在芯表面上生成Pt单层。核-壳型Pd1Ir1Ni2 @ Pt / C催化剂表现出优异的氧还原反应活性,其质量活性明显高于以PdIr或PdNi纳米粒子为核的Pt单层催化剂,质量比市售Pt / C电催化剂高四倍。在0.1 M HClO4中,半波电势达到0.91 V,比Pt / C高约30 mV。我们使用X射线粉末衍射,X射线光电子能谱,热重分析,透射电子显微镜和能量色散X射线光谱法验证了碳载PdIrNi纳米粒子的结构和组成,并且我们进行了稳定性测试,证实了该产品的优异性能。我们的核壳催化剂的稳定性。我们认为,镍在合金纳米颗粒中的溶解产生的多孔结构可能是催化剂性能提高的主要原因。

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