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Nanocomposites inorganic

Shchipunov Yu.A., Karpenko, T.Yu. and Krekoten, A.V. (2005) Hybrid organic-inorganic nanocomposites fabricated with a novel biocompatible... [Pg.105]

Sanches, C., Ribot, F. and Lebeau, B. (1999) Molecular design of hybrid organic-inorganic nanocomposites synthesized via sol-gel chemistry. Journal of Materials Chemistry, 9, 35—44. [Pg.110]

Sanchez, C., Julian, B., Belleville, P. and Popall, M. (2005) Applications of hybrid organic-inorganic nanocomposites. Journal of Materials Chemistry, 15, 3559-3592. [Pg.334]

Sanchez, C., Lebeau, B., Chaput, F. and Boilot, J.P. (2003) Optical properties of functional hybrid organic-inorganic nanocomposites. Advanced Materials, 15, 1969-1994. [Pg.394]

Sayari, A. Hamoudi, S. 2001. Periodic mesoporous silica-based organic—inorganic nanocomposite materials. Chem. Mater. 13 3151-3168. [Pg.307]

As shown, for instance, by the lack of any sol-gel catalyst cited in a recent, thorough review covering tens of industrial applications of sol-gel hybrid materials C. Sanchez, B. Julian, P. Belleville and M. Popall, Applications of hybrid organic-inorganic nanocomposites, J. Mater. Chem., 2005, 15, 3559. [Pg.140]

A. Sayari and S. Hamoudi, Periodic Mesoporous Silica-Based Organic-Inorganic Nanocomposite Materials, Chem. Mater., 2001, 13, 3151. [Pg.203]

Sanchez C, Soler-Illia G, Ribot F, Lalot T, Mayer CR, Cabuil V. Designed hybrid organic-inorganic nanocomposites from functional nanobuilding blocks. Chem Mater 2001 13 3061-3083. [Pg.154]

The hypothesis formulated to explain the results shown here considers the nanoribbons as an extremely organised (oriented) hybrid organic-inorganic nanocomposite. The size control as well as the isolation of these nanoribbons, which can eventually be done using a polymerisable surfactant, may be feasible for give more information about the composition and the structure of such nanoribbons. [Pg.450]

Silica hydrolysis-condensation of alkoxysilane-terminated chains of various polymers (PB, poly(propylene)-glycol, poly (ethylene)-glycol) leads to the formation of silica nodules. Hybrid (organic-inorganic) nanocomposite rubbery materials are obtained in this way. These materials have been swollen by various deuterated solvents, in order to probe the order induced in the polymer matrix under stress [80]. [Pg.584]

Sellinger, A., Weiss, P. M., Nguyen, A., Lu, Y., Assink, R. A., Gong, W., and Brinker, C. J., Continuous, self-assembly of organic-inorganic nanocomposite coatings that mimic nature. Nature 394,256 (1998). [Pg.47]

Sukpirom, N. and Lemer, M. M., Preparation of organic-inorganic nanocomposites with a layered titanate, Chem. Mater. (2001), 13, 2179-2185. [Pg.293]

Z. Wang and T.J. Pinnavaia, Hybrid organic-inorganic nanocomposites Exfoliation of magadiite mono-layers in an elastomeric epoxy polymer, Chem. Mater., 1998, 10 1820-1826. [Pg.325]

A. Sellinger, P.M. Weiss, A. Nguyen, Y. Lu, R.A. Assink, W. Gong and C.J. Brinker, Continuous Self-Assembly of Organic-Inorganic Nanocomposite Coatings that Mimic Nacre , Nature, 394 256-60 (1998). [Pg.132]


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See also in sourсe #XX -- [ Pg.313 ]

See also in sourсe #XX -- [ Pg.31 ]




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Organic-inorganic nanocomposites networks

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