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INFLUENCE OF PORE FORMERS ON ELECTRICAL PROPERTIES OF CaTi0.9Fe0.1O3-δ PEROVSKITE-TYPE CERAMICS


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Pasierb P., Drożdż-Cieśla E., Rekas M.: Properties of BaCe1-xTixO3 materials for hydrogen electrochemical separators, Journal of Power Sources 181 (2008), pp. 17-23.Search in Google Scholar

Zhu J., Zäch M.: Nanostructured materials for photocatalytic hydrogen production, Current Opinion in Colloid & Interface Science 14 (2009), pp. 260-269.Search in Google Scholar

Sahraoui M., Kharrat C., Halouani K., Two-dimensional modeling of electrochemical and transport phenomena in the porous structures of a PEMFC, International Journal of Hydrogen Energy 34 (2009), pp. 3091-3103.Search in Google Scholar

Cindrella, L., Kannan, A. M., Lin, J. F., Saminathan, K., Ho, Y., Lin, C. W., Wertz, J.: Gas diffusion layer for proton exchange membrane fuel cells-A review, Journal of Power Sources 194 (2009), pp. 146-160.Search in Google Scholar

Quarez E., Noirault S., Le Gal La Salle A., Stevens P., Joubert O., Evaluation of Ba2(In0.8Ti0.2)2O5.2-n(OH)2n as a potential electrolyte material for proton-conducting solid oxide fuel cell, Journal of Power Sources 195 (2010), pp. 4923-4927.Search in Google Scholar

Bi L., Zhang S., Fang S., Tao Z., Peng R., Liu W.: A novel anode supported BaCe0.7Ta0.1Y0.2O3-δ electrolyte membrane for proton-conducting solid oxide fuel cell, Electrochemistry Communications 10 (2008), pp. 1598-601.Search in Google Scholar

Zhao L., He B., Ling Y., Xun Z., Peng R., Meng G., Liu X.: Cobalt-free oxide Ba0.5Sr0.5Fe0.8Cu0.2O3Ld for proton-conducting solid oxide fuel cell cathode, International journal of hydrogen energy 35 (2010), pp. 3769 - 3774.Search in Google Scholar

Fu X.-Z, Luo J.-L., Sanger A. R., Xu Z.-R., Chuang K. T.: Fabrication of bi-layered proton conducting membrane for hydrocarbon solid oxide fuel cell reactors, Electrochimica Acta 55 (2010), pp. 1145-1149.Search in Google Scholar

Matsumoto H., Nomura I., Okada S., Ishihara T.: Intermediate-temperature solid oxide fuel cells using perovskite-type oxide based on barium cerate, Solid State Ionics 179 (2008), pp. 1486-1489.Search in Google Scholar

D'Epifanio A., Fabbri E., Di Bartolomeo E., Licoccia S., Traversa E.: Design of BaZr0.8Y0.2O3-δ Protonic Conductor to Improve the Electrochemical Performance in Intermediate Temperature Solid Oxide Fuel Cells (IT-SOFCs), Fuel Cells 08 (2008), pp. 69-76.Search in Google Scholar

Wu T., Peng R., Xia C.: Sm0.5Sr0.5CoO3-δ-BaCe0.8Sm0.2O3-δ composite cathodes for proton-conducting solid oxide fuel cells, Solid State Ionics 179 (2008), pp. 1505-1508.Search in Google Scholar

Fontaine M.-L., Larring Y., Haugsrud R., Norby T., Wiik K., Bredesen R.: Novel high temperature proton conducting fuel cells: Production of La0.995Sr0.005NbO4-δ electrolyte thin films and compatible cathode architectures, Journal of Power Sources 188 (2009), pp. 106-113.Search in Google Scholar

Yang L., Liu Z., Wang S., Choi Y., Zuo C., Liu M.: A mixed proton, oxygen ion, and electron conducting cathode for SOFCs based on oxide proton conductors, Journal of Power Sources 195 (2010), pp. 471-474.Search in Google Scholar

Fontaine M. L., Larring Y., Smith J. B., Raeder H., Andersen Ø. S., Einarsrud M.-A., Wiik K., Bredesen R.: Shaping of advanced asymmetric structures of proton conducting ceramic materials for SOFC and membrane-based process applications, Journal of the European Ceramic Society 29 (2009), pp. 931-935.Search in Google Scholar

Figueiredo F. M., Kharton V. V., Waerenborgh J. C., Viskup A. P., Naumovich E. N., Frade J. R.: Influence of Microstructure on the Electrical Properties of Iron-Substituted Calcium Titanate Ceramics, Journal of American Ceramic Society 87 (2004), pp. 2252-2261.Search in Google Scholar

Ahmed M. A., Bishay S. T.: Effect of annealing time, weight pressure and Fe doping on the electrical and magnetic behavior of calcium titanate, Materials Chemistry and Physics 114 (2009), pp. 446-450.Search in Google Scholar

Shaula A. L., Fuentes R. O., Figueiredo F. M., Kharton V. V., Marques F. M. B., Frade J. R: Grain size effects on oxygen permeation in submicrometric CaTi0.8Fe0.2O3-δ ceramics obtained by mechanical activation, Journal of the European Ceramic Society 25 (2005), pp. 2613-2616.Search in Google Scholar

Figueiredo F. M., Waerenborgh J. C., Kharton V. V., Nafe H., Frade J. R.: On the relationships between structure, oxygen stoichiometry and ionic conductivity of CaTi1-xFexO3-δ (x = 0.05, 0.20, 0.40, 0.60), Solid State Ionics 156 (2003), pp. 371-381.Search in Google Scholar

Kharton V. V., Figueiredo F. M., Kovalevsky A. V., Viskup A. P., Naumovich E. N., Jurado J. R., Frade J. R.: The Oxygen Diffusion in, and Thermal Expansion of, SrTiO33-δ - and CaTiO3-δ-Based Materials, Defect Diffusion Forum 186/187 (2000), pp. 119-136.Search in Google Scholar

The X'PERT PLUS Rietveld algorithm is based on the source codes of the program LHPM1 (April 11, 1988) of R. J. Hill and C. J. Howard, X'Pert Plus, © 1999 Philips Electronics N. V.Search in Google Scholar

Liu, X Liebermann, R C, PCMIDU 20 (1993), 171.10.1016/0166-3542(93)90618-SSearch in Google Scholar

eISSN:
2083-4799
ISSN:
1730-2439
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Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Materials Sciences, Functional and Smart Materials