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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Microscopy investigations of the microstructural change and thermal response of cobalt-based nanoparticles confined inside a carbon nanotube medium
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Microscopy investigations of the microstructural change and thermal response of cobalt-based nanoparticles confined inside a carbon nanotube medium

机译:限制在碳纳米管介质中的钴基纳米颗粒的微观结构变化和热响应的显微镜研究

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摘要

Faceted cobalt-cobalt oxide based nanoparticles (NPs) with high density and narrow size distribution (50 +/- 5 nm) were selectively cast inside the channels of multi-walled carbon nanotubes (CNTs) through the controlled thermal decomposition of cobalt stearate in the presence of oleic acid as surfactant. The total loading of the NPs is ca. 60 wt% due to the confinement effect of CNTs, which play the role of "nanoreactors" for the cobalt complex filling and its further decomposition. The cast Co-based NPs consist of a Co-CoO core-shell structure with a relatively high contribution of the metallic phase, thanks to the confinement effect which prevents excessive oxidation. The Co-CoO NPs were transformed into highly porous cobalt aggregates constituted by small cobalt clusters (5 nm) after reduction with a high effective surface area. These cobalt clusters display an extremely high resistance towards oxidation, thanks to the confined medium. The evolution of the Co-based NP microstructure of the as-synthesized and the reduced composites, as a function of temperature, was evaluated by in situ heating the systems inside the TEM. On the as-synthesized sample with a mixture of Co and CoO the heating process leads to a rapid shape modification and coalescence of the NPs at a temperature of 400 degrees C along with the formation of a cobalt carbide interface. In contrast, the reduced sample displays a much higher sintering resistance upon annealing under the same conditions as cobalt NPs with a mean diameter of 10 nm, still present at an annealing temperature up to 800 degrees C. The work reported here underlines the benefit of the confinement effect to improve the oxidative and sintering resistance of cast metal NPs and also in the synthesis of a new porous structure containing small metal NPs which could be of great interest for catalytic and magnetic applications.
机译:通过在硬脂酸钴中进行受控的热分解,将具有高密度和窄粒度分布(50 +/- 5 nm)的多面钴-钴氧化物基纳米颗粒(NPs)选择性浇铸到多壁碳纳米管(CNTs)的通道内。油酸作为表面活性剂的存在。 NP的总负载为ca。由于CNT的限制作用,其含量为60重量%,其在钴配合物填充及其进一步分解中起“纳米反应器”的作用。由于具有防止过度氧化的限制作用,铸造的基于Co的NP由Co-CoO核-壳结构组成,具有相对较高的金属相贡献。在具有高有效表面积的还原之后,Co-CoO NPs被转化为由小钴簇(5 nm)构成的高度多孔的钴聚集体。由于受限的介质,这些钴簇显示出极高的抗氧化性。通过原位加热TEM内部的系统,评估了合成后和还原后的复合材料中Co基NP微观结构的演变。在含有Co和CoO混合物的合成样品上,加热过程导致NP的快速形变和聚结在400摄氏度的温度下进行,并形成了碳化钴界面。相反,在与平均直径为10 nm的钴纳米颗粒相同的条件下进行退火后,还原后的样品在烧结时表现出更高的耐烧结性,在高达800摄氏度的退火温度下仍存在。限制作用,以改善铸造金属NP的抗氧化性和烧结性,并且还可以合成包含小金属NP的新型多孔结构,这可能在催化和磁性应用中引起极大兴趣。

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