Controllable growth transition from single-walled to double-walled carbon nanotubes using sulfur in an aerosol CVD reactor

碳纳米管 气溶胶 硫黄 材料科学 化学工程 纳米技术 化学气相沉积 碳纤维 化学 复合材料 有机化学 冶金 工程类 复合数
作者
Zhenyu Xu,Er‐Xiong Ding,Anastasios Karakassides,Peng Fei Liu,Hua Jiang,Ghulam Yasin,Qiang Zhang,Esko I. Kauppinen
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:522: 168000-168000 被引量:3
标识
DOI:10.1016/j.cej.2025.168000
摘要

Although double-walled carbon nanotubes (DWCNTs) are valued for their electrical conductivity, mechanical strength, and thermal stability, understanding their growth mechanism is still evolving, with ongoing research efforts providing valuable insights. Sulfur plays a crucial role as a growth promoter. This research explores sulfur's effect using a floating catalyst chemical vapor deposition (FC-CVD) system with methane as carbon source and ferrocene as catalyst. Optimized sulfur concentration significantly improves CNT film quality with a sheet resistance of 61.4 Ω/sq at 90 % transmittance after being doped with AuCl 3 , along with a linear increase in yield as sulfur concentration increases. The proposed mechanism suggests that increased sulfur levels result in a growth transition from single-walled CNTs to double-walled CNTs by activating medium-sized catalyst particles, all while not altering the size distribution. The highest DWCNT proportion observed is 87 %, confirmed by high-resolution transmission electron microscopy. Additionally, a change in the catalyst particle size distribution may shift the growth window, resulting in the formation of multi-walled CNTs. Electron diffraction patterns reveal a random chirality and chiral angle distribution of CNTs, indicating minimal sulfur impact on the nanotube atomic structure. These findings underscore sulfur's importance in CNT synthesis and provide new insights into its mechanisms, potentially guiding future advancements in the controlled production of DWCNTs. • Optimized sulfur concentration enhances CNT quality and improves film conductivity. • High sulfur levels induce a growth transition from SWCNTs to DWCNTs. • Sulfur effects activation of catalyst particles without altering size distribution. • ED pattern analysis indicates sulfur doesn't affect chiral-selective growth of CNT.
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