Ceramic Materials for Energy Applications: Ceramic by Yutai Katoh, Kevin M. Fox, Hua-Tay Lin, Ilias Belharouak,

By Yutai Katoh, Kevin M. Fox, Hua-Tay Lin, Ilias Belharouak, Sujanto Widjaja, Dileep Singh

This publication is a suite of papers from the yank Ceramic Society's thirty fifth foreign convention on complex Ceramics and Composites, held in Daytona seashore, Florida, January 23-28, 2011. This factor contains papers offered within the Ceramics for electrical power iteration, garage and Distribution; complex Ceramics and Composites for Nuclear and Fusion functions; and complicated fabrics and applied sciences for Rechargeable Batteries symposia.

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Additional resources for Ceramic Materials for Energy Applications: Ceramic Engineering and Science Proceedings, Volume 32

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Jesenak, and V. S. Fajnor, Thermal analysis of the synthetic zeolite ZSM5 and its silver iodide form, Journal of Thermal Analysis and Calorimetry, 50 (3), 505-509(1997). 32 ■ Ceramic Materials for Energy Applications Ceramic Materials for Energy Applications Edited by Yutai Katoh, Kevin M. Fox, Hua-Tay Lin and Ilias Belharouak Copyright © 2011 The American Ceramic Society LAYERED DOUBLE HYDROXIDES FOR ANION CAPTURE AND STORAGE J. Phillips'; L. J. 1xl0 5 years, produced with a yield of - 6 % during nuclear fission which exists in solution as the pertechnetate anion, TCO4'.

Balkema Publishers (2005). 11. E. Deltombe, C. Vanleugenhaghe, and M. Pourbaix, Aluminium. Atlas of Electrochemical Equilibria in Aqueous Solutions: p. 168-175 12. L. Vandeperre, M. Liska, and A. Al-Tabbaa. Reactive MgO cements : Properties and Applications, in International conference on sustainable construction materials and technologies. Coventry: Taylor and Francis (2007). 13. J. Vandeperre and A. Al-Tabbaa, Accelerated carbonation of reactive MgO cements. Advances in Cement Research, 19(2): p.

2 mg/g. 2% of the sorbed t in the final product. Figure 7. Results from the TGA-DSC analyses of iodine-loaded aerogel. Figure 8. 4 kPa pressure. 30 ■ Ceramic Materials for Energy Applications Functionalized Silica Aerogels CONCLUSION This work has shown that it is possible to functionalize aerogels, something that is difficult to do with traditional solvent-based methods because of the frailty of the aerogel backbone. These functionalized aerogels can be effective for capturing a variety of airborne target species and, once laden with contaminants, these materials can be sintered or densified.

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