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Catalyst nanoparticle growth dynamics and their influence on product morphology in a CVD process for continuous carbon nanotube synthesis

机译:催化剂纳米粒子生长动力学及其在连续碳纳米管合成的CVD工艺中对产物形态的影响

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摘要

Extrapolating the properties of individual CNTs into macro-scale CNT materials using a continuous and cost effective process offers enormous potential for a variety of applications. The floating catalyst chemical vapor deposition (FCCVD) method discussed in this paper bridges the gap between generating nano- and macro-scale CNT material and has already been adopted by industry for exploitation. A deep understanding of the phenomena occurring within the FCCVD reactor is thereby key to producing the desired CNT product and successfully scaling up the process further. This paper correlates information on decomposition of reactants, axial catalyst nanoparticle dynamics and the morphology of the resultant CNTs and shows how these are strongly related to the temperature and chemical availability within the reactor. For the first time, in-situ measurements of catalyst particle size distributions coupled with reactant decomposition profiles and a detailed axial SEM study of formed CNT materials reveal specific domains that have important implications for scale-up. A novel observation is the formation, disappearance and reformation of catalyst nanoparticles along the reactor axis, caused by their evaporation and re-condensation and mapping of different CNT morphologies as a result of this process.
机译:使用连续且经济高效的方法将单个CNT的特性外推到大型CNT材料中,为各种应用提供了巨大的潜力。本文讨论的浮动催化剂化学气相沉积(FCCVD)方法弥合了产生纳米级和大型CNT材料之间的差距,并且已被工业界所采用。因此,对FCCVD反应器内发生的现象的深刻理解是生产所需的CNT产品并成功扩大工艺规模的关键。本文将有关反应物分解,轴向催化剂纳米粒子动力学和所得碳纳米管形态的信息进行关联,并显示这些与反应器内的温度和化学利用率之间的关系密切。催化剂粒度分布的原位测量与反应物分解曲线以及形成的CNT材料的详细轴向SEM研究首次揭示了对扩大规模具有重要意义的特定区域。一种新颖的观察是沿着该反应器轴的催化剂纳米颗粒的形成,消失和重整,这是由于该过程导致的蒸发,再冷凝和不同CNT形态的映射所致。

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