Browse > Article
http://dx.doi.org/10.5714/CL.2011.12.1.016

Tensile Properties and Morphology of Carbon Fibers Stabilized by Plasma Treatment  

Lee, Seung-Wook (PolymerHybrid Center, Korea Institute of Science and Technology)
Lee, Hwa-Young (PolymerHybrid Center, Korea Institute of Science and Technology)
Jang, Sung-Yeon (Department of Chemistry, Kookmin University)
Jo, Seong-Mu (PolymerHybrid Center, Korea Institute of Science and Technology)
Lee, Hun-Soo (Institute of Advanced Composite Materials, Korea Institute of Science and Technology)
Lee, Sung-Ho (Institute of Advanced Composite Materials, Korea Institute of Science and Technology)
Publication Information
Carbon letters / v.12, no.1, 2011 , pp. 16-20 More about this Journal
Abstract
Commercial PAN fibers were thermally stabilized at 220 or $240^{\circ}C$ for 30 min. Those fibers were further stabilized using radio-frequency (RF) capacitive plasma discharge during 5 or 15 min. From Fourier transform infrared spectroscopy results, it was observed that an additional plasma treatment led to further stabilization of PAN fibers. After stabilization, carbonization was performed to investigate the final tensile properties of the fabricated carbon fibers (CFs). The results revealed that a combination of thermal and plasma treatment is a possible stabilization process for manufacturing CFs. Morphology of CFs was investigated using scanning electron microscopy. The morphology shows that the plasma stabilization performed by the RF large gap plasma discharge may damage the surface of the CF, so it is necessary to select a proper process condition to minimize the damage.
Keywords
Polyacrylonitrile; Carbon fiber; Plasma treatment; Tensile properties; Scanning electron microscopy;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Buckley JD, Edie DD. Carbon-Carbon Materials and Composites, NASA Reference Publication 1254, National Aeronautics and Space Administration, Washington, DC (1992).
2 Fitzer E, Frohs W, Heine M. Carbon, 24, 387 (1986).   DOI   ScienceOn
3 Kim J, Kim YC, Ahn W, Kim CY. Polym Eng Sci, 33, 1452 (1993).   DOI   ScienceOn
4 Yamane A, Sawai D, Kameda T, Kanamoto T, Ito M, Porter RS. Macromolecules, 30, 4170 (1997).   DOI   ScienceOn
5 United States Patent, US2009/0263295 A1.
6 United States Patent, US7649078 B1.
7 Chatterjee N, Basu S, Palit SK, Maiti MM. J Polym Sci, Part B: Polym Phys, 33, 1705 (1995).   DOI   ScienceOn
8 Ouyang Q, Cheng L, Wang H, Li K. Polym Degrad Stab, 93, 1415 (2008).   DOI   ScienceOn
9 Zhu Y, Wilding MA, Mukhopadhyay SK. J Mater Sci, 31, 3831 (1996).   DOI
10 Gupta VB, Kothari VK. Manufactured Fibre Technology, Chapman & Hall, London (1997).
11 Shindo A. J Ceram Assoc Jpn, 69, C195 (1961).   DOI