Journal of Nanomaterials
Volume 2009 (2009), Article ID 562376, 11 pages
doi:10.1155/2009/562376
Research Article
Facile Synthesis of Highly Aligned Multiwalled Carbon Nanotubes from Polymer Precursors
1Materials Science Division, Argonne National Laboratory, Argonne, IL 60439, USA
2Physical Science Department, Richard J. Daley College, Chicago, IL 60652, USA
3Department of Physics, Northern Illinois University, DeKalb, IL 60115, USA
4Center for Nanoscale Materials, Argonne National Laboratory, Argonne, IL 60439, USA
5Departamento de Ciencia de Materiales, Universidad de Cadiz, Puerto Real 11510 Cadiz, Spain
Received 11 November 2008; Accepted 25 February 2009
Academic Editor: Jun Liu
Copyright © 2009 Catherine Y. Han et al. This is an open access article distributed under the
Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Linked References
- S. Iijima, “Helical microtubules of graphitic carbon,” Nature, vol. 354, no. 6348, pp. 56–58, 1991. View at Publisher · View at Google Scholar
- M. S. Dresselhaus, G. Dresselhaus, and P. C. Eklund, Science of Fullerenes and Carbon Nanotubes, Academic Press, San Diego, Calif, USA, 1996.
- J. Kong, N. R. Franklin, C. Zhou, et al., “Nanotube molecular wires as chemical sensors,” Science, vol. 287, no. 5453, pp. 622–625, 2000. View at Publisher · View at Google Scholar
- R. H. Baughman, C. Cui, A. A. Zakhidov, et al., “Carbon nanotube actuators,” Science, vol. 284, no. 5418, pp. 1340–1344, 1999. View at Publisher · View at Google Scholar
- W. B. Choi, W. Park, E. J. Bae, et al., “Aligned carbon nanotubes for Nanoelectronics,” Nanotechnology, vol. 15, pp. 512–516, 2004.
- A. G. Rinzler, J. H. Hafner, P. Nikolaev, et al., “Unraveling nanotubes: field emission from an atomic wire,” Science, vol. 269, no. 5230, pp. 1550–1553, 1995. View at Publisher · View at Google Scholar · View at PubMed
- G. Che, B. B. Lakshmi, E. R. Fisher, and C. R. Martin, “Carbon nanotubule membranes for electrochemical energy storage and production,” Nature, vol. 393, no. 6683, pp. 346–349, 1998. View at Publisher · View at Google Scholar
- S. S. Wong, J. D. Harper, P. T. Lansbury Jr., and C. M. Lieber, “Carbon nanotube tips: high-resolution probes for imaging biological systems,” Journal of the American Chemical Society, vol. 120, no. 3, pp. 603–604, 1998. View at Publisher · View at Google Scholar
- H. Dai, J. H. Hafner, A. G. Rinzler, D. T. Colbert, and R. E. Smalley, “Nanotubes as nanoprobes in scanning probe microscopy,” Nature, vol. 384, no. 6605, pp. 147–150, 1996. View at Publisher · View at Google Scholar
- S. S. Wong, E. Joselevich, A. T. Woolley, C. L. Cheung, and C. M. Lieber, “Covalently functionalized nanotubes as nanometresized probes in chemistry and biology,” Nature, vol. 394, no. 6688, pp. 52–55, 1998. View at Publisher · View at Google Scholar · View at PubMed
- R. Martel, T. Schmidt, H. R. Shea, T. Hertel, and P. Avouris, “Single- and multi-wall carbon nanotube field-effect transistors,” Applied Physics Letters, vol. 73, no. 17, pp. 2447–2449, 1998. View at Publisher · View at Google Scholar
- M. Ahlskog, R. Tarkiainen, L. Roschier, and P. Hakonen, “Single-electron transistor made of two crossing multiwalled carbon nanotubes and its noise properties,” Applied Physics Letters, vol. 77, no. 24, pp. 4037–4039, 2000. View at Publisher · View at Google Scholar
- L. Dai and A. W. H. Mau, “Controlled synthesis and modification of carbon nanotubes and C60: carbon nanostructures for advanced polymeric composite materials,” Advanced Materials, vol. 13, no. 12-13, pp. 899–913, 2001. View at Publisher · View at Google Scholar
- X. K. Wang, X. W. Lin, V. P. Dravid, J. B. Ketterson, and R. P. H. Chang, “Carbon nanotubes synthesized in a hydrogen arc discharge,” Applied Physics Letters, vol. 66, no. 18, pp. 2430–2432, 1995. View at Publisher · View at Google Scholar
- Y. Zhang and S. Iijima, “Formation of single-wall carbon nanotubes by laser ablation of fullerenes at low temperature,” Applied Physics Letters, vol. 75, no. 20, pp. 3087–3089, 1999. View at Publisher · View at Google Scholar
- J. Li, C. Papadopoulos, J. M. Xu, and M. Moskovits, “Highly-ordered carbon nanotube arrays for electronics applications,” Applied Physics Letters, vol. 75, no. 3, pp. 367–369, 1999. View at Publisher · View at Google Scholar
- C. Journet, W. K. Maser, P. Bernier, et al., “Large-scale production of single-walled carbon nanotubes by the electric-arc technique,” Nature, vol. 388, no. 6644, pp. 756–758, 1997. View at Publisher · View at Google Scholar
- A. Thess, R. Lee, P. Nikolaev, et al., “Crystalline ropes of metallic carbon nanotubes,” Science, vol. 273, no. 5274, pp. 483–487, 1996. View at Publisher · View at Google Scholar
- T. W. Ebbesen and P. M. Ajayan, “Large-scale synthesis of carbon nanotubes,” Nature, vol. 358, no. 6383, pp. 220–222, 1992. View at Publisher · View at Google Scholar
- H. M. Cheng, F. Li, G. Su, et al., “Large-scale and low-cost synthesis of single-walled carbon nanotubes by the catalytic pyrolysis of hydrocarbons,” Applied Physics Letters, vol. 72, no. 25, pp. 3282–3284, 1998. View at Publisher · View at Google Scholar
- W. Hu, L. Yuan, Z. Chen, D. Gong, and K. Saito, “Fabrication and characterization of vertically aligned carbon nanotubes on silicon substrates using porous alumina nanotemplates,” Journal of Nanoscience and Nanotechnology, vol. 2, no. 2, pp. 203–207, 2002. View at Publisher · View at Google Scholar
- L. Yuan, K. Saito, W. Hu, and Z. Chen, “Ethylene flame synthesis of well-aligned multi-walled carbon nanotubes,” Chemical Physics Letters, vol. 346, no. 1-2, pp. 23–28, 2001. View at Publisher · View at Google Scholar
- L. Yuan, K. Saito, C. Pan, F. A. Williams, and A. S. Gordon, “Nanotubes from methane flames,” Chemical Physics Letters, vol. 340, no. 3-4, pp. 237–241, 2001. View at Publisher · View at Google Scholar
- K. Saito, F. A. Williams, and A. S. Gordon, “Structure of laminar coflow methane-air diffusion flames,” Journal of Heat Transfer, vol. 108, no. 3, pp. 640–648, 1986.
- J. S. Suh and J. S. Lee, “Highly ordered two-dimensional carbon nanotube arrays,” Applied Physics Letters, vol. 75, no. 14, pp. 2047–2049, 1999. View at Publisher · View at Google Scholar
- T. Kyotani, L.-F. Tsai, and A. Tomita, “Formation of ultrafine carbon tubes by using an anodic aluminum oxide film as a template,” Chemistry of Materials, vol. 7, no. 8, pp. 1427–1428, 1995. View at Publisher · View at Google Scholar
- R. V. Parthasarathy, K. L. N. Phani, and C. R. Martin, “Template synthesis of graphitic nanotubules,” Advanced Materials, vol. 7, no. 11, pp. 896–897, 1998. View at Publisher · View at Google Scholar
- T. T. Xu, F. T. Fisher, L. C. Brinson, and R. S. Ruoff, “Bone-shaped nanomaterials for nanocomposite applications,” Nano Letters, vol. 3, no. 8, pp. 1135–1139, 2003. View at Publisher · View at Google Scholar
- J. S. Suh, J. S. Lee, and H. Kim, “Linearly joined carbon nanotubes,” Synthetic Metals, vol. 123, no. 3, pp. 381–383, 2001. View at Publisher · View at Google Scholar
- J. S. Lee, G. H. Gu, H. Kim, K. S. Jeong, J. Bae, and J. S. Suh, “Growth of carbon nanotubes on anodic aluminum oxide templates: fabrication of a tube-in-tube and linearly joined tube,” Chemistry of Materials, vol. 13, no. 7, pp. 2387–2391, 2001. View at Publisher · View at Google Scholar
- J. Li, C. Papadopoulos, and J. Xu, “Growing Y-junction carbon nanotubes,” Nature, vol. 402, no. 6759, pp. 253–254, 1999.
- Y. Yang, Z. Hu, Q. Wu, Y. N. Lü, X. Z. Wang, and Y. Chen, “Template-confined growth and structural characterization of amorphous carbon nanotubes,” Chemical Physics Letters, vol. 373, no. 5-6, pp. 580–585, 2003. View at Publisher · View at Google Scholar
- R. V. Parthasarathy, K. L. N. Phani, and C. R. Martin, “Template synthesis of graphitic nanotubules,” Advanced Materials, vol. 7, no. 11, pp. 896–897, 1995. View at Publisher · View at Google Scholar
- T. Kyotani, B. K. Pradhan, and A. Tomita, “Synthesis of carbon nanotube composites in nanochannels of an anodic aluminum oxide film,” Bulletin of the Chemical Society of Japan, vol. 72, no. 9, pp. 1957–1970, 1999. View at Publisher · View at Google Scholar
- T. Kyotani, L.-F. Tsai, and A. Tomita, “Preparation of ultrafine carbon tubes in nanochannels of an anodic aluminum oxide film,” Chemistry of Materials, vol. 8, no. 8, pp. 2109–2113, 1996. View at Publisher · View at Google Scholar
- M. Steinhart, J. H. Wendorff, A. Greiner, et al., “Polymer nanotubes by wetting of ordered porous templates,” Science, vol. 296, no. 5575, p. 1997, 2002. View at Publisher · View at Google Scholar · View at PubMed
- Z.-L. Xiao, C. Y. Han, U. Welp, et al., “Fabrication of alumina nanotubes and nanowires by etching porous alumina membranes,” Nano Letters, vol. 2, no. 11, pp. 1293–1297, 2002. View at Publisher · View at Google Scholar
- H. Masuda and M. Satoh, “Fabrication of gold nanodot array using anodic porous alumina as an evaporation mask,” Japanese Journal of Applied Physics, Part 2, vol. 35, no. 1B, pp. L126–L129, 1996. View at Publisher · View at Google Scholar
- H. Masuda, F. Hasegwa, and S. Ono, “Self-ordering of cell arrangement of anodic porous alumina formed in sulfuric acid solution,” Journal of the Electrochemical Society, vol. 144, no. 5, pp. L127–L130, 1997. View at Publisher · View at Google Scholar
- M. Sveningsson, R.-E. Morjan, O. A. Nerushev, et al., “Raman spectroscopy and field-emission properties of CVD-grown carbon-nanotube films,” Applied Physics A, vol. 73, no. 4, pp. 409–418, 2001. View at Publisher · View at Google Scholar
- M. S. Dresselhaus, G. Dresselhaus, A. Jorio, A. G. Souza Filho, and R. Saito, “Raman spectroscopy on isolated single wall carbon nanotubes,” Carbon, vol. 40, no. 12, pp. 2043–2061, 2002. View at Publisher · View at Google Scholar
- C. Y. Han, G. A. Willing, Z.-L. Xiao, and H. H. Wang, “Control of the anodic aluminum oxide barrier layer opening process by wet chemical etching,” Langmuir, vol. 23, no. 3, pp. 1564–1568, 2007. View at Publisher · View at Google Scholar · View at PubMed
- A. C. S. Samia, J. A. Schlueter, J. S. Jiang, S. D. Bader, C.-J. Qin, and X.-M. Lin, “Effect of ligand-metal interactions on the growth of transition-metal and alloy nanoparticles,” Chemistry of Materials, vol. 18, no. 22, pp. 5203–5212, 2006. View at Publisher · View at Google Scholar
- J. Jang, K. J. Lee, and Y. Kim, “Fabrication of polyimide nanotubes and carbon nanotubes containing magnetic iron oxide in confinement,” Chemical Communications, no. 30, pp. 3847–3849, 2005. View at Publisher · View at Google Scholar · View at PubMed
- J. W. Elam, G. Xiong, C. Y. Han, et al., “Atomic layer deposition for the conformal coating of nanoporous materials,” Journal of Nanomaterials, vol. 2006, Article ID 64501, 5 pages, 2006. View at Publisher · View at Google Scholar
- J. W. Elam, A. Zinovev, C. Y. Han, et al., “Atomic layer deposition of palladium films on surfaces,” Thin Solid Films, vol. 515, no. 4, pp. 1664–1673, 2006. View at Publisher · View at Google Scholar
- G. Xiong, J. W. Elam, H. Feng, et al., “Effect of atomic layer deposition coatings on the surface structure of anodic aluminum oxide membranes,” Journal of Physical Chemistry B, vol. 109, no. 29, pp. 14059–14063, 2005. View at Publisher · View at Google Scholar · View at PubMed
- M. J. Pellin, P. C. Stair, G. Xiong, et al., “Mesoporous catalytic membranes: synthetic control of pore size and wall composition,” Catalysis Letters, vol. 102, no. 3-4, pp. 127–130, 2005. View at Publisher · View at Google Scholar
- P. G. Collins, K. Bradley, M. Ishigami, and A. Zettl, “Extreme oxygen sensitivity of electronic properties of carbon nanotubes,” Science, vol. 287, no. 5459, pp. 1801–1804, 2000.
- J. Kong, M. G. Chapline, and H. Dai, “Functionalized carbon nanotubes for molecular hydrogen sensors,” Advanced Materials, vol. 13, no. 18, pp. 1384–1386, 2001. View at Publisher · View at Google Scholar
- A. V. Bazilevsky, K. Sun, A. L. Yarin, and C. M. Megaridis, “Selective intercalation of polymers in carbon nanotubes,” Langmuir, vol. 23, no. 14, pp. 7451–7455, 2007. View at Publisher · View at Google Scholar · View at PubMed
- A. V. Bazilevsky, K. Sun, A. L. Yarin, and C. M. Megaridis, “Room-temperature, open-air, wet intercalation of liquids, surfactants, polymers and nanoparticles within nanotubes and microchannels,” Journal of Materials Chemistry, vol. 18, no. 6, pp. 696–702, 2008. View at Publisher · View at Google Scholar
- C. Puglisi, F. Samperi, S. Carroccio, and G. Montaudo, “Maldi-top investigation of polymer degradation. Pyrolysis of poly(bisphenol a carbonate),” Macromolecules, vol. 32, no. 26, pp. 8821–8828, 1999. View at Publisher · View at Google Scholar
- J. D. Peterson, S. Vyazovkin, and C. A. Wight, “Kinetics of the thermal and thermo-oxidative degradation of polystyrene, polyethylene and poly(propylene),” Macromolecular Chemistry and Physics, vol. 202, no. 6, pp. 775–784, 2001. View at Publisher · View at Google Scholar
- N. G. Chopra, L. X. Benedict, V. H. Crespi, M. L. Cohen, S. G. Louie, and A. Zettl, “Fully collapsed carbon nanotubes,” Nature, vol. 377, no. 6545, pp. 135–138, 1995. View at Publisher · View at Google Scholar
- W. Qian, F. Wei, T. Liu, Z. Wang, and Y. Li, “What causes the carbon nanotubes collapse in a chemical vapor deposition process,” Journal of Chemical Physics, vol. 118, no. 2, pp. 878–882, 2003. View at Publisher · View at Google Scholar