Polymer Nanotube Nanocomposites: Synthesis, Properties, and by Vikas Mittal PDF

By Vikas Mittal

Offers a one-stop resource for info on synthesis, houses, and power purposes of nanotube strengthened polymer nanocompositesResearch on polymer nanotube composites is a comparatively new box, and many improvement is needed to accomplish a really large-scale advertisement program. even supposing a couple of advancements have taken position when it comes to the dispersion of nanotubes within the polymer matrices and corresponding advancements within the numerous actual homes of the composites, a significant textual content at the topic, that can assimilate those developments in a single position to supply an total strength of the know-how, is missing.This edited quantity brings jointly contributions from a number of senior scientists within the box of polymer nanotube composites know-how to make clear the hot advances in those commercially very important parts of polymer expertise. The e-book presents the subsequent features:A precis of contemporary advances in nanotube composite synthesis technologyA simple creation to polymer nanotube nanocomposite expertise for readers who're new to the fieldValuable insights for using applied sciences for polymer nanocomposites for advertisement applicationReviews of present polymer nanotube structures to underscore the excessive strength of nanotubes as fillersPathways for large-scale advertisement purposes ofnanotube nanocomposites

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Additional info for Polymer Nanotube Nanocomposites: Synthesis, Properties, and Applications (Wiley-Scrivener)

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In addition, the adhesion strength of the nanotube/ polymer interface may also be a key factor for reinforcement, which explains that a lot of ongoing works have been focused on understanding the nature of nanotube/polymer matrix interactions and on the grafting of a polymer on nanotube surface (7,8). Undoubtedly, understanding the reinforcement of carbon nanotubes based nanocomposites requires the characterization of several parameters of the nanotubes like diameters, lengths (and their distribution), structures (SWNT, MWNT).

49, p. 1063, 2009. 40. W. S. C. Fowler, SPE ANTEC '98, p. 1219, 1998. 41. K. S. Bryant, SPE ANTEC '95, p. 1358,1995. 42. S. Kumar, H. Doshi, M. O. A. Schiraldi, Polymer, Vol. 43, p. 1701,2002. 43. Y Hou, J. Tang, H. Zhang, C. Qian, Y Feng, and J Liu, ACS Nano, Vol. 3, p. 1057, 2009. 44. X. Cao, H. Dong, C M . A. Lucia, Journal of Applied Polymer Science, Vol. 113, p. 466, 2009. 45. O. M. W. H. P. Ramirez, Science, Vol. 263, p. 1744,1994. 46. Q. Zhang, J. Li, X. Zhao, and D. Chen, Polymer International, Vol.

The temperatures also increased on increasing the nanotube content, indicating that the nanotubes acted as a nucleating agent for the polymer and promoted the crystallization rate of the polymer also observed in the studies mentioned earlier. Sung et al. (54) reported the electrical conductivity of the polycarbonate multi walled nanotube nanotubes as a function of nanotube content. Nanotubes without treatment as well as after treatment with H 2 0 2 (freeze drying or thermal drying) were used for the composite synthesis.

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