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氮诱导的催化剂重构用于多壁碳纳米管的外延生长。

Nitrogen-induced catalyst restructuring for epitaxial growth of multiwalled carbon nanotubes.

机构信息

Department of Materials Science and Metallurgy, University of Cambridge, Pembroke Street, Cambridge CB2 3QZ, United Kingdom.

出版信息

ACS Nano. 2012 Sep 25;6(9):7723-30. doi: 10.1021/nn301517g. Epub 2012 Aug 24.

Abstract

The ability to simply and economically produce carbon nanotubes (CNTs) with a defined chiral angle is crucial for the exploitation of nanotubes for their electrical properties. We investigate a diverse range of nitrogen sources for their ability to control CNT chiral angle via epitaxial growth from highly ordered catalyst particles. Through the use of in situ mass and infrared spectrometry, we elucidate the mechanism by which these ordered catalyst particles are formed, showing that ammonia is a key intermediate in the process. Subsequently, the direct addition of a small amount of ammonia to an otherwise standard CNT synthesis is shown to be able to form catalyst particles that grow single chiral angle multiwalled carbon nanotubes. Variation in the ammonia concentration clarifies the catalyst restructuring necessary for the epitaxial growth of carbon nanotubes and subsequent chiral angle control. The simple addition of a nitrogen source is an attractive route for chiral angle control; however, the model also suggests further ways to optimize CNT chiral angle distributions as well as to improve CNT and graphene yield and crystallinity. This understanding also explains the action of ammonia in its widely used role in activating catalyst prior to CNT growth. Finally, this work highlights the uses of novel surface geometries that are achievable through multiphase catalysts.

摘要

简单而经济地生产具有特定手性角的碳纳米管(CNTs)对于利用 CNT 的电学性质至关重要。我们研究了多种氮源,以考察它们通过从高度有序的催化剂颗粒进行外延生长来控制 CNT 手性角的能力。通过使用原位质量和红外光谱,我们阐明了这些有序催化剂颗粒形成的机制,表明氨是该过程中的关键中间体。随后,直接向标准 CNT 合成物中添加少量氨,就能够形成能够生长单一手性角多壁 CNT 的催化剂颗粒。改变氨浓度可以清楚地了解为 CNT 外延生长和随后的手性角控制所需的催化剂重构。简单地添加氮源是控制手性角的一种有吸引力的方法;但是,该模型还提出了进一步优化 CNT 手性角分布以及提高 CNT 和石墨烯产率和结晶度的方法。这种理解还解释了氨在其广泛用于在 CNT 生长之前激活催化剂的作用。最后,这项工作突出了通过多相催化剂可实现的新型表面几何形状的用途。

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