Controlled nanostructuration of catalyst particles for carbon nanotubes growth

S. Rizk, M. B. Assouar, L. De Poucques, J. Bougdira
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引用次数: 11

Abstract

We report on a novel method based on a plasma pre-treatment for controlled nanostructuration and patterning of iron catalyst particles from a continuous film in view of carbon nanotube growth. The effects of the hydrogen plasma conditions on the diameter and the density of the catalyst nanoparticles was studied and discussed. We were then able to propose a comprehensive mechanism for the metallic nanostructuration. We showed that as the plasma power density increases, first a reduction of the iron nanoparticle size is observed followed by for the highest plasma powers a phenomenon of alteration in the deposited film. A better control of the nucleation process and the nanostructuration were observed for low hydrogen pressures. The correlation between the plasma parameters and the obtained iron nanoparticles was established. The growth of carbon nanotubes (CNTs) was carried out on the patterned catalyst nanoparticles under CH4/H2 microwave plasma. High quality double-walled and multi-walled CNTs of a diameter of about 5 nm have be obtained.
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碳纳米管生长催化剂颗粒的可控纳米结构
我们报道了一种基于等离子体预处理的新方法,用于从碳纳米管生长的连续膜中控制铁催化剂颗粒的纳米结构和图像化。研究和讨论了氢等离子体条件对催化剂纳米颗粒直径和密度的影响。然后我们能够提出金属纳米结构的综合机制。我们发现,随着等离子体功率密度的增加,首先观察到铁纳米颗粒尺寸的减小,然后在最高等离子体功率下,沉积膜发生改变现象。在低氢压力条件下,能较好地控制成核过程和纳米结构。建立了等离子体参数与获得的铁纳米颗粒之间的相关性。在CH4/H2微波等离子体条件下,对碳纳米管进行了生长。得到了高质量的双壁和多壁碳纳米管,其直径约为5nm。
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