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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Thermal Treatment of PtNiCo Electrocatalysts: Effects of Nanoscale Strain and Structure on the Activity and Stability for the Oxygen Reduction Reaction
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Thermal Treatment of PtNiCo Electrocatalysts: Effects of Nanoscale Strain and Structure on the Activity and Stability for the Oxygen Reduction Reaction

机译:PtNiCo电催化剂的热处理:纳米级应变和结构对氧还原反应活性和稳定性的影响

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摘要

The ability to control the nanoscale size, composition, phase, and facet of multimetallic catalysts is important for advancing the design and preparation of advanced catalysts. This report describes the results of an investigation of the thermal treatment temperature on nanoengineered platinum-nickel-cobalt catalysts for oxygen reduction reaction, focusing on understanding the effects of lattice strain and surface properties on ; activity and stability. The thermal treatment temperatures ranged from 400 to 926 °C. The catalysts were characterized by microscopic, spectroscopic, and electrochemical techniques for establishing the correlation between the electrocatalytic properties and the catalyst structures. The composition, size, and phase properties of the trimetallic nanoparticles were controllable by our synthesis and processing approach. The increase in the thermal treatment temperature of the carbon-supported catalysts was shown to lead to a gradual shrinkage of the lattice constants of the alloys and an enhanced population of facets on the nanoparticle catalysts. A combination of the lattice shrinkage and the surface enrichment of nanocrystal facets on the nanoparticle catalysts as a result of the increased temperature was shown to play a major role in enhancing the electrocatalytic activity for catalysts. Detailed analyses of the oxidation states, atomic distributions, and interatomic distances revealed a certain degree of changes in Co enrichment and surface Co oxides as a function of the thermal treatment temperature. These findings provided important insights into the correlation between the electrocatalytic activity/stability and the nanostructural parameters (lattice strain, surface oxidation state, and distribution) of the nanoengineered trimetallic catalysts.
机译:控制多金属催化剂的纳米级尺寸,组成,相和小面的能力对于推进高级催化剂的设计和制备很重要。该报告描述了对用于氧还原反应的纳米工程铂镍钴催化剂的热处理温度进行研究的结果,重点是了解晶格应变和表面性质对;活动和稳定性。热处理温度范围为400至926°C。通过显微镜,光谱学和电化学技术表征催化剂,以建立电催化性能与催化剂结构之间的关系。通过我们的合成和加工方法,可以控制三金属纳米颗粒的组成,尺寸和相性质。碳载催化剂的热处理温度的增加显示出导致合金的晶格常数的逐​​渐收缩和纳米颗粒催化剂上小平面的增加。由于温度升高,纳米颗粒催化剂上的晶格收缩和纳米晶面的表面富集相结合,在增强催化剂的电催化活性方面起着主要作用。对氧化态,原子分布和原子间距离的详细分析显示,随着热处理温度的升高,钴富集度和表面钴氧化物的变化程度也有所不同。这些发现为纳米工程化三金属催化剂的电催化活性/稳定性与纳米结构参数(晶格应变,表面氧化态和分布)之间的关系提供了重要的见识。

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