Facile-low temperature route towards development of SiC-based coating on carbon nanotubes for improved oxidation resistance

被引:1
作者
Galaveen, Shivanand C. [1 ]
Satam, Mahesh K. [1 ]
Gurnani, Luv [1 ]
Venkateswaran, T. [2 ]
Mukhopadhyay, Amartya [1 ]
机构
[1] Indian Inst Technol, Dept Met Engn & Mat Sci, High Temp & Energy Mat Lab, Bombay 400076, Maharashtra, India
[2] Vikram Sarabhai Space Ctr ISRO, Mat Proc Res Grp, Trivandrum, Kerala, India
关键词
MECHANICAL-PROPERTIES; SILICON-CARBIDE; COMPOSITES; CERAMICS; GRAPHITE;
D O I
10.1007/s10853-016-0115-1
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Coating with silicon carbide is a preferred avenue for improving the oxidation resistance of carbon nanotubes. However, expensive and non-scalable techniques like vapor deposition are commonly used to develop such coatings. Against this backdrop, reported here is a facile, cost-effective and low temperature route, based on wet-chemical synthesis, for obtaining SiC-based coating on multi-walled carbon nanotubes (MWCNTs). The coating was achieved by dispersing surface-modified MWCNTs in silica sol (having optimized viscosity), followed by simultaneous reduction and 'carburization' of the silica (wetting MWCNTs) in the presence of Mg at 600 A degrees C. X-ray diffraction and RAMAN spectroscopy confirmed the presence of beta-SiC, while TEM observations revealed the development of uniform and thin coating (similar to 3 nm thick) on undamaged MWCNTs. Thermo-gravimetric and differential thermal analyses up to 1500 A degrees C in air confirmed significant improvement in oxidation resistance for the MWCNTs with SiC-based coating (just similar to 15 % mass loss; as against rapid mass loss of similar to 100 % for uncoated MWCNTs due to oxidation). Additionally, undamaged MWCNTs (with SiC-based coating) could be imaged in TEM after exposure in air at 1200 A degrees C for longer duration.
引用
收藏
页码:8543 / 8549
页数:7
相关论文
共 33 条
[21]   High yield purification of multiwalled carbon nanotubes by selective oxidation during thermal annealing [J].
Park, YS ;
Choi, YC ;
Kim, KS ;
Chung, DC ;
Bae, DJ ;
An, KH ;
Lim, SC ;
Zhu, XY ;
Lee, YH .
CARBON, 2001, 39 (05) :655-661
[22]   Carbon nanotubes in novel ceramic matrix nanocomposites [J].
Peigney, A ;
Laurent, C ;
Flahaut, E ;
Rousset, A .
CERAMICS INTERNATIONAL, 2000, 26 (06) :677-683
[23]   SiOx-coating of carbon nanotubes at room temperature [J].
Seeger, T ;
Redlich, P ;
Grobert, N ;
Terrones, M ;
Walton, DRM ;
Kroto, HW ;
Rühle, M .
CHEMICAL PHYSICS LETTERS, 2001, 339 (1-2) :41-46
[24]   SiC formation on carbon nanotube surface for improving wettability with aluminum [J].
So, Kang Pyo ;
Jeong, Jun Cheol ;
Park, Jong Gil ;
Park, Hyoen Ki ;
Choi, Yong Ho ;
Noh, Dong Hwan ;
Keum, Dong Hoon ;
Jeong, Hye Yun ;
Biswas, Chandan ;
Hong, Chan Ho ;
Lee, Young Hee .
COMPOSITES SCIENCE AND TECHNOLOGY, 2013, 74 :6-13
[25]   Morphology change of multi-walled carbon nanotubes with SiC coating by electron irradiation [J].
Taguchi, T. ;
Kibria, A. K. M. Fazle ;
Shamoto, S. .
15TH INTERNATIONAL CONFERENCE ON THIN FILMS (ICTF-15), 2013, 417
[26]   Advances in the science and technology of carbon nanotubes and their composites: a review [J].
Thostenson, ET ;
Ren, ZF ;
Chou, TW .
COMPOSITES SCIENCE AND TECHNOLOGY, 2001, 61 (13) :1899-1912
[27]   Contact-damage-resistant ceramic/single-wall carbon nanotubes and ceramic/graphite composites [J].
Wang, XT ;
Padture, NP ;
Tanaka, H .
NATURE MATERIALS, 2004, 3 (08) :539-544
[28]   OXIDATION PROTECTION OF CARBON-FIBERS BY COATINGS [J].
WANG, YQ ;
ZHOU, BL ;
WANG, ZM .
CARBON, 1995, 33 (04) :427-433
[29]   Direct observation of toughening mechanisms in carbon nanotube ceramic matrix composites [J].
Xia, Z ;
Riester, L ;
Curtin, WA ;
Li, H ;
Sheldon, BW ;
Liang, J ;
Chang, B ;
Xu, JM .
ACTA MATERIALIA, 2004, 52 (04) :931-944
[30]   Quantification and promotion of interfacial interactions between carbon nanotubes and polymer derived ceramics [J].
Yang, Yingchao ;
Liang, Xin ;
Chen, Weibing ;
Cao, Linlin ;
Li, Minglin ;
Sheldon, Brian W. ;
Lou, Jun .
CARBON, 2015, 95 :964-971