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New Hybrid Inorganic/Organic Block Copolymers as Templates for the Formation of Mesostructured Materials

Published online by Cambridge University Press:  01 February 2011

Guido Kickelbick
Affiliation:
Institut für Anorganische Chemie, Technische Universität Wien, Getreidemarkt 9, A-1060 Wien, AUSTRIA
Josef Bauer
Affiliation:
Institut für Anorganische Chemie, Technische Universität Wien, Getreidemarkt 9, A-1060 Wien, AUSTRIA
Nicola Hüsing
Affiliation:
Institut für Anorganische Chemie, Technische Universität Wien, Getreidemarkt 9, A-1060 Wien, AUSTRIA
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Abstract

Amphiphilic block copolymers were prepared with poly(dimethylsiloxane) (PDMS) as the hydrophobic unit. The hydrophilic block was composed of either a poly (ethylene oxide) or a functionalized polysiloxane unit. The polymer based on polysiloxane blocks only, represents one of the first examples of a new class of surfactants with a purely inorganic Si-O backbone. Beside their potential use as templates for the synthesis of mesostructured inorganic materials, these new polymers offer the possibility of being transformed into porous mesostructured silica-based material by controlled pyrolysis.

Type
Research Article
Copyright
Copyright © Materials Research Society 2000

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References

REFERENCES

1. Raman, N. K., Anderson, M. T., and Brinker, C. J., Chem. Mater., 8, 1682 (1996).Google Scholar
2. Kresge, C. T., Leonowicz, M. E., Roth, W. J., Vartuli, J. C., and Beck, J. S., Nature, 359, 710 (1992).Google Scholar
3. Soten, I. and Ozin, G. A., Curr. Opin. Coll. Int. Sci., 4, 325 (1999).Google Scholar
4. Zaho, D., Feng, J., Huo, Q., Melosh, N., Fredickson, G. H., Chmelka, B. F., and Stucky, G. D., Science, 279, 548 (1998).Google Scholar
5. Schmidt-Winkel, P., Lukens, W. W., Zaho, D., Yang, P., Chmelka, B. F., and Stucky, G. D., J. Am. Chem. Soc., 121, 254 (1999).Google Scholar
6. Yang, P., Deng, T., Zhao, D., Feng, P., Pine, D., Chmelka, B. F., Whitesides, G. M., and Stucky, G. D., Science, 282, 2244 (1998).Google Scholar
7. Yang, P., Zaho, D., Margolese, D. I., Chmelka, B. F., and Stucky, G. D., Nature, 396, 152 (1998).Google Scholar
8. Yang, P., Zaho, D., Margolese, D. I., Chmelka, B. F., and Stucky, G. D., Chem. Mater., 11, 2813 (1999).Google Scholar
9. Saljoughian, M., Monatsh. Chem., 115, 519 (1984).Google Scholar
10. Miller, P. J. and Matyjaszewski, K., Macromolecules, 32, 8760 (1999).Google Scholar
11. Mazurek, M. and Chojnowski, J., Makromol. Chem., 178, 1005 (1977).Google Scholar
12. Antonietti, M., Förster, S., Hartmann, J., and Oestereich, S., Macromolecules, 29, 3800 (1996).Google Scholar