碳纳米管
硫黄
分散性
化学气相沉积
材料科学
吞吐量
纳米管
催化作用
纳米技术
碳纤维
化学工程
沉积(地质)
化学
复合材料
有机化学
计算机科学
高分子化学
冶金
工程类
古生物学
沉积物
复合数
电信
无线
生物
作者
Adarsh Kaniyoor,John Bulmer,Thurid Gspann,Jenifer Mizen,James Ryley,Patrick Kiley,Jeronimo Terrones,Cesar Miranda-Reyes,Giorgio Divitini,Martin Sparkes,Bill O’Neill,Alan H. Windle,James A. Elliott
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2019-01-01
卷期号:11 (39): 18483-18495
被引量:33
摘要
Floating catalyst chemical vapor deposition (FC-CVD) methods offer a highly scalable strategy for single-step synthesis and assembly of carbon nanotubes (CNTs) into macroscopic textiles. However, the non-uniform axial temperature profile of a typical reactor, and differing precursor breakdown temperatures, result in a broad distribution of catalyst particle sizes. Spun CNT fibres therefore contain nanotubes with varying diameters and wall numbers. Herein, we describe a general FC-CVD approach to obtain relatively large yields of predominantly single-wall CNT fibres, irrespective of the growth promoter (usually a sulfur compound). By increasing carrier gas (hydrogen) flow rate beyond a threshold whilst maintaining a constant C : H2 mole ratio, CNTs with narrower diameters, a high degree of graphitization (G : D ratio ∼100) and a large throughput are produced, provided S : Fe ratio is sufficiently low. Analysis of the intense Raman radial breathing modes and asymmetric G bands, and a shift in the main nanotube population from thermogravimetric data, show that with increasing flow rate, the fibres are enriched with small diameter, metallic CNTs. Transmission electron microscopy corraborates our primary observation from Raman spectroscopy that with high total flow rates, the fibres produced consist of predominantly small diameter SWCNTs.
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