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Growth Termination and Multiple Nucleation of Single-Wall Carbon Nanotubes Evidenced by in Situ Transmission Electron Microscopy

机译:通过原位透射电子显微镜证实的单壁碳纳米管的生长终止和多核化合物

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摘要

In order to controllably grow single-wall carbon nanotubes (SWCNTs), a better understanding of the growth processes and how they are influenced by external parameters such as catalyst and gaseous environment is required. Here, we present direct evidence of growth termination of individual SWCNTs and successive growth of additional SWCNTs on Co catalyst particles supported on MgO by means of environmental transmission electron microscopy. Such in situ observations reveal the plethora of solid carbon formations at the local scale while it is happening and thereby elucidate the multitude of configurations resulting from identical external synthesis conditions, which should be considered in the quest for controlled SWCNT growth. Using CO and a mixture of CO and H-2 as carbon sources, we show that the growth of SWCNTs terminates with a reduced tube catalyst adhesion strength. Two main reasons for the cessation are proposed: insufficient active carbon species and a certain amount of stress exerted at the tube catalyst interface. Interestingly, it was observed that catalyst particles stayed active in terms of nucleating additional solid carbon structures after growth termination of the first SWCNT. These observations elucidate the importance of an in-depth understanding of the role of catalysts and carbon sources in the continued growth of SWCNTs. Furthermore, it serves as a guide for further control of carbon nanostructure synthesis via catalyst engineering and synthesis optimization.
机译:为了可控制地生长单壁碳纳米管(SWCNT),需要更好地理解生长过程以及它们是如何受到外部参数的影响,例如催化剂和气态环境。在这里,我们呈现出各个SWCNT的生长终止的直接证据,并通过环境透射电子显微镜检查MgO支持的CO催化剂颗粒的额外SWCNTs的连续生长。这样的原位观察揭示了当地规模的血于固体碳形成,而在发生这种情况下,阐明由相同的外部合成条件产生的众多配置,这应该考虑在寻求受控的SWCNT生长中。使用CO和CO和H-2的混合物作为碳源,表明SWCNT的生长终止于管催化剂粘合强度降低。提出了一种戒烟的两种主要原因:活性炭物质不足,并且在管催化剂界面处施加一定量的应力。有趣的是,观察到催化剂颗粒在第一个SWCNT的生长终止后累积额外的固体碳结构方面保持活性。这些观察结果阐明了深入了解催化剂和碳源在持续生长的SWCNTs中的作用的重要性。此外,它用作通过催化剂工程和合成优化进一步控制碳纳米结构合成的指导。

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