Ind. Eng. Chem. Res., 47 (7), 2166 -2175, 2008. 10.1021/ie0711630 S0888-5885(07)01163-3
Web Release Date: March 4, 2008

Copyright © 2008 American Chemical Society

High-Quality Multiwalled Carbon Nanotubes from Catalytic Decomposition of Carboneous Materials in Gas-Solid Fluidized Beds

Seung Yong Son, Yoong Lee, Sungho Won, and Dong Hyun Lee*

Department of Chemical Engineering, Sungkyunkwan University, 300 Chunchun, Jangan, Suwon 440-746, Korea

Sang Done Kim

Department of Chemical and Biomolecular Engineering & Energy and Environment Research Center, Korea Advanced Institute of Science and Technology, Daejeon 305-701, Republic of Korea

Su Whan Sung

Department of Chemical Engineering, Kyungpook National University, Daegu 702-701, Republic of Korea

Received for review August 27, 2007

Revised manuscript received November 13, 2007

Accepted January 26, 2008

Abstract:

The effects of reaction temperature (873-1223 K), carbon sources (CH4, C2H2, C2H4, and C2H6), and the amount of catalyst (2.5-20 g) on the physical properties (tube diameter, conversion, volume expansion, intensity ratio of the D- and G-band peaks (ID/IG)) of multiwalled carbon nanotubes (MWCNTs) in a gas-solid fluidized bed reactor (with an inner diameter (id) of 0.056 m and a height of 1.0 m) have been determined. The MWCNTs synthesized by the catalytic decomposition of methane produce the smallest tube diameter and the highest intensity ratio (ID/IG) among the carbon sources (acetylene, ethylene, and ethane). Although the tube diameter of MWCNTs that have been synthesized from the decomposition of methane and ethane at 1073 K are similar, the volume expansion of the carbon nanotubes (CNTs) agglomerate from ethane is higher than that from methane. Both the tube diameter and the ID/IG ratio of the MWCNTs synthesized from the decomposition of methane decrease as the reaction temperature increases (in the temperature range of 1073-1223 K). The amount of catalyst does not affect the mean tube diameter of the synthesized CNTs; however, CNTs with a bamboo structure are synthesized when the carbon decomposition rate is higher than the CNT growth rate.


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