DocumentCode :
2652610
Title :
Characteristics and thermodynamics of carbon nanotubes synthesized via corona plasma deposition
Author :
Chae, J.O. ; Li, M.W. ; Ki, H.B. ; Kwak, Y.H. ; Kim, B.S.
Author_Institution :
Dept. of Mech. Eng., Inha Univ., Inchon
fYear :
2006
fDate :
4-8 June 2006
Firstpage :
468
Lastpage :
468
Abstract :
Summary form only given. Carbon nanotubes were synthesized via a cooperating technology of low-temperature plasma deposition and template-controlled growth at atmospheric pressure. The as-grown multiwall carbon nanotubes with outer diameter of about 40 nm were restrictedly synthesized in the channels of anodic aluminum oxide template from a methane/hydrogen gas mixture, whose molar ratio is 1/10, by AC corona plasma deposition. The innermost diameter of the carbon nanotubes is about 1.3 nm. Differing from the well-crystallized graphitic nanotubes synthesized via high-temperature DC arc plasma, the carbon nanotubes synthesized via low-temperature plasma deposition generally consist of carbon crystallites whose basal planes roughly arrange along the tubular axes. So there raise questions about the formation mechanism of the tubular structure and the innermost diameter of the nanotubes. Previous report in energetics predicted the smallest graphitic nanotube being 0.4 nm, and carbon nanotube with such size was indeed synthesized via DC arc plasma. But the energetics of crystalline carbon nanotube is complicated because there is considerable internal surface energy among the carbon crystallites. We calculated the Gibbs free energies of tubular crystallitic carbon nanotube and solid crystallitic nanowire. It was found that the carbon nanotubes consisting of crystallites with their basal planes arranging along the tubular axes have the lower Gibbs free energy, indicating a possible thermodynamic preference for their tubular structures
Keywords :
carbon nanotubes; corona; crystallites; free energy; nanowires; plasma deposition; surface energy; C; Gibbs free energies; anodic aluminum oxide template; atmospheric pressure; carbon crystallites; carbon nanotubes; corona plasma deposition; graphitic nanotubes; high-temperature DC arc plasma; internal surface energy; methane-hydrogen gas mixture; molar ratio; solid crystallitic nanowire; template-controlled growth; thermodynamics; tubular structure; Aluminum oxide; Atmospheric-pressure plasmas; Carbon nanotubes; Corona; Crystallization; Hydrogen; Mechanical engineering; Plasma properties; Solids; Thermodynamics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2006. ICOPS 2006. IEEE Conference Record - Abstracts. The 33rd IEEE International Conference on
Conference_Location :
Traverse City, MI
Print_ISBN :
1-4244-0125-9
Type :
conf
DOI :
10.1109/PLASMA.2006.1707341
Filename :
1707341
Link To Document :
بازگشت