TY - JOUR
T1 - Selective synthesis of single/double/multi-walled carbon nanotubes on MgO-supported Fe catalyst
AU - Zhang, Qiang
AU - Zhao, Mengqiang
AU - Huang, Jiaqi
AU - Qian, Weizhong
AU - Wei, Fei
PY - 2008/11
Y1 - 2008/11
N2 - By simple impregnation and hydrothermal treatment, MgO supported iron catalysts were obtained that were used for carbon nanotube (CNT) growth from chemical vapor deposition with methane as the carbon source. Single/double/multi-walled CNTs (S/D/MWCNTs) were selectively synthesized on the Fe/MgO catalyst with different iron loadings. When the iron loading was low (0.5%), the iron atom distributed on the MgC) support was sintered to iron nanoparticles with a size of 0.8-1.2 nm under the growth conditions. This catalyst promoted the formation of SWCNTs, which was attributed to the surface diffusion of carbon atoms on it. The selectivity for SWCNTs in the as-grown product from the 0.5%Fe/MgO catalyst was 90%, and the carbon mass yield was 19 times that of the active phase. When the iron loading was increased to 3%, larger iron catalyst particles of about 2.0 nm were formed. On this catalyst, there was more bulk diffusion of carbon, and DWCNTs became the main products due to the combination of both surface and bulk diffusion. With the iron loading was further increasing, iron particles from 1 to 8 nm were formed, which promoted the growth of MWCNTs together with S/DWCNTs. With increasing iron amount on the porous MgO support, the diameter, wall number, and proportion of semiconducting CNTs also increased. This provides a controllable way to selectively grow S/D/MWCNTs on a large scale in a fluidized bed to meet critical needs for CNTs in applications.
AB - By simple impregnation and hydrothermal treatment, MgO supported iron catalysts were obtained that were used for carbon nanotube (CNT) growth from chemical vapor deposition with methane as the carbon source. Single/double/multi-walled CNTs (S/D/MWCNTs) were selectively synthesized on the Fe/MgO catalyst with different iron loadings. When the iron loading was low (0.5%), the iron atom distributed on the MgC) support was sintered to iron nanoparticles with a size of 0.8-1.2 nm under the growth conditions. This catalyst promoted the formation of SWCNTs, which was attributed to the surface diffusion of carbon atoms on it. The selectivity for SWCNTs in the as-grown product from the 0.5%Fe/MgO catalyst was 90%, and the carbon mass yield was 19 times that of the active phase. When the iron loading was increased to 3%, larger iron catalyst particles of about 2.0 nm were formed. On this catalyst, there was more bulk diffusion of carbon, and DWCNTs became the main products due to the combination of both surface and bulk diffusion. With the iron loading was further increasing, iron particles from 1 to 8 nm were formed, which promoted the growth of MWCNTs together with S/DWCNTs. With increasing iron amount on the porous MgO support, the diameter, wall number, and proportion of semiconducting CNTs also increased. This provides a controllable way to selectively grow S/D/MWCNTs on a large scale in a fluidized bed to meet critical needs for CNTs in applications.
KW - Carbon nanotube
KW - Chemical vapor deposition
KW - Iron
KW - Magnesia
KW - Mirostructure
KW - Raman spectroscopy
KW - Supported catalyst
UR - http://www.scopus.com/inward/record.url?scp=58149129168&partnerID=8YFLogxK
U2 - 10.1016/s1872-2067(09)60015-2
DO - 10.1016/s1872-2067(09)60015-2
M3 - Article
AN - SCOPUS:58149129168
SN - 1872-2067
VL - 29
SP - 1138
EP - 1144
JO - Chinese Journal of Catalysis
JF - Chinese Journal of Catalysis
IS - 11
ER -