On the kinetics of carbon nanotube growth by thermal CVD method

被引:50
|
作者
Juang, ZY [1 ]
Lai, JF [1 ]
Weng, CH [1 ]
Lee, JH [1 ]
Lai, HJ [1 ]
Lai, TS [1 ]
Tsai, CH [1 ]
机构
[1] Natl Tsing Hua Univ, Dept Engn & Syst Sci, Hsinchu 300, Taiwan
关键词
carbon nanotube; mechanism; thermal CVD; ammonia;
D O I
10.1016/j.diamond.2004.03.007
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The role of ammonia (NH3) on obtaining good quality vertically aligned multi-walled carbon nanotubes (CNTs) in thermal chemical vapor deposition (CVD) method has been widely studied. It was generally agreed that NH3 helps to maintain catalyst metal surface active by reacting with amorphous carbon. In this article, a systematic study in varying the temperature and mixing ratio of gases was conducted in order to clarify the role of NH3 and revealed a criterion for optimized condition window in the growth processes. In addition, this study has also carried out a statistical analysis through intensive TEM observations on the tube diameters, bamboo spacing, and the formation rate of each diaphragm under various temperatures and carbon source/NH3 ratios. While the formation of the separation diaphragms were indeed a result of bulk diffusion of carbon atoms from bottom of the Ni nanoparticle following thermal dehydrogenization to the top of the Ni nanoparticle, there were other carbon atoms diffusing presumably via surface diffusion to the CNT-metal interface and contributed to the growth of tube wall; in other words, the CNTs growth is simultaneous renucleation and growth processes, instead of a continuous renucleation and growth process. This kinetics-based mechanism in combination with the proposed role of NH3 could not only successfully explain the effects of the process parameters including temperature and the mixing gas ratio, but also could be used for pursuing the goal of lower growth temperature for thermal CVD method which is very important for many applications of CNTs. (C) 2004 Elsevier B.V.. All rights reserved.
引用
收藏
页码:2140 / 2146
页数:7
相关论文
共 50 条
  • [31] Carbon nanotube growth by rapid thermal processing
    Wong, TS
    Wang, CT
    Chen, KH
    Chen, LC
    Ma, KJ
    DIAMOND AND RELATED MATERIALS, 2001, 10 (9-10) : 1810 - 1813
  • [32] Effect of Factors on Growth of Carbon Nanotubes by Thermal CVD
    Yoon, Seung-Il
    Heo, Sung-Taek
    Kim, Sam-Soo
    Lee, Yang-Kyu
    Chun, Hyun-Tae
    Lee, Dong-Gu
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 2009, 499 : 472 - 481
  • [33] A simple thermal CVD method for carbon nanotube synthesis on stainless steel 304 without the addition of an external catalyst
    Baddour, Carole E.
    Fadlallah, Faysal
    Nasuhoglu, Deniz
    Mitra, Reema
    Vandsburger, Leron
    Meunier, Jean-Luc
    CARBON, 2009, 47 (01) : 313 - 318
  • [34] On the growth kinetics of a single-wall carbon nanotube
    Lin, ÉÉ
    DOKLADY PHYSICS, 2003, 48 (04) : 180 - 181
  • [35] On the growth kinetics of a single-wall carbon nanotube
    É. É. Lin
    Doklady Physics, 2003, 48 : 180 - 181
  • [36] Kinetics of laser-assisted carbon nanotube growth
    van de Burgt, Y.
    Bellouard, Y.
    Mandamparambil, R.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (11) : 5162 - 5173
  • [37] Synthesis of Vertically Aligned Carbon Nanotube Arrays by Injection Method in CVD
    Padya, Balaji
    Prabhakar, K. V. P.
    Jain, P. K.
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2010, 10 (08) : 4960 - 4966
  • [38] Time dependent growth of vertically aligned carbon nanotube forest using a laser activated catalytical CVD method
    Haluska, Miro
    Bellouard, Yves
    Dietzel, Andreas
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2008, 245 (10): : 1927 - 1930
  • [39] Thermal decomposition kinetics of multiwalled carbon nanotube/polypropylene nanocomposites
    Cheng, H. K. F.
    Chong, M. F.
    Liu, E.
    Zhou, K.
    Li, L.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2014, 117 (01) : 63 - 71
  • [40] Thermal decomposition kinetics of multiwalled carbon nanotube/polypropylene nanocomposites
    H. K. F. Cheng
    M. F. Chong
    E. Liu
    K. Zhou
    L. Li
    Journal of Thermal Analysis and Calorimetry, 2014, 117 : 63 - 71