By Liming Dai PhD
Nanotechnology isn't any longer a only social speaking aspect and is starting to have an effect on the lives of every person. Carbon nanotechnology as an important shaper of latest nanotechnologies has advanced right into a really interdisciplinary box, which encompasses chemistry, physics, biology, drugs, fabrics technological know-how and engineering. it is a box during which an incredible volume of literature has been generated inside fresh years, and the variety of courses remains to be expanding each year. Carbon Nanotechnology goals to supply a well timed insurance of the hot improvement within the box with up to date reports and feedback by means of world-renowned specialists. meant to be an exposition of state of the art examine and improvement instead of one of those convention continuing, Carbon Nanotechnology can be very invaluable not just to skilled scientists and engineers, who desire to expand their wisdom of the wide-ranging nanotechnology and/or to enhance useful units, but in addition to graduate and senior undergraduate scholars who glance to make their mark during this box of the longer term.
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Additional info for Carbon Nanotechnology: Recent Developments in Chemistry, Physics, Materials Science and Device Applications
Metallofullerenes (endohedral fullerenes) have also been encapsulated in SWNTs and their structures investigated by TEM and other techniques [89b]. SWNTs encapsulating fullerenes, peapods such as Cgg and metallofullerenes (Gd@C82) were synthesized by vapor-phase-doping technique, directly on Si substrates . They used SWNTs grown on a SiOg/Si substrate by dip-coating of metal acetate solution and alcohol CVD. The caps of the SWNTs were opened by annealing them in dry air before the vapor-phase deposition of fullerenes.
H. Hafner, D. W Owens, P. G. Kotula, C. B. Carter, J. H. Weaver and R. E. Smalley, Science 266 (1994) 1218. -H. -R. -H. -U. -J. -H. -H. -K. Park, Appl. Phys. A-Mater. Sci. Process. 76 (2003) 285. N. Sano, Chim. Oggi-Chem. Today 22 (2004) 54. K. Anazawa, K. Shimotani, C. Manabe, H. Watanabe and M. Shimizu, Appl. Phys. Lett. 81 (2002) 739. 46 A. R. Rao 16. 17. 18. S. J. Lee, H. K. Baik, J. Yoo and J. H.
Liu et al.  subjected SWNTs to ultrasound treatment in an acidic medium to break-up the bundles into open-ended small fragments of 100-300 nm length. The smaller fragments were functionalized. Various techniques have been employed for obtaining SWNTs sorted by length [129-133]. Chromatographic techniques are useful for the length fractionation of shortened SWNTs with sizes of less than 300 nm [129a, 130,131,133]. For longer SWNTs, techniques such as capillary electrophoresis  and field-flow fractionation appear to be more applicable .