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STABILIZED ZIRCONIA­BASED GAS SENSORS 119 REFERENCES Bartolomeo E.D., Grilli M.L,. and Traversa E. (2004a) Sensing mechanism of potentiometric gas sensors based on stabilized zirconia with oxide electrodes: Is it always mixed potential? J. Electrochem. Soc. 151, H133­H139. Bartolomeo E.D., Kaabbuathong N., Grilli M.L., and Traversa E. (2004b) Planar electrochemical sensors based on tape-cast YSZ layers and oxide electrodes. Solid State Ionics 171, 173­181. Brosha E.L., Mukundan R., Lujan R., and Garson F.H. (2006) Mixed potential NO x sensors using thin film electro- des and electrolytes for stationary reciprocating engine type applications. Sens. Actuators B 119, 398­408. Brosha E.L., Mukundan R., Brown D.R., Garson F.H., and Visser J.H. (2002) Development of ceramic mixed potential sensors for automotive applications. Solid State Ionics 148, 61­69. Brosha E.L., Mukundan R., Brown D.R., Garson F.H., Vissel J.H., Zanini M., Zhou Z., and Logothetis E.M. (2000) CO/HC sensors based on thin films of LaCoO 3 and La 0.8 Sr 0.2 CoO 3- metal oxides. Sens. Actuators B 69, 171­182. Bishop S.R., Duncan K.L., and Wachsman E.D. (2009) Defect equilibria and chemical expansion in non- stoichiometric undoped and gadolinium-doped cerium oxide. Electrochem. Acta 54(5), 1436­1443. Chevallier L., Bartolomeo E.D., Grilli M.L., Mainas M., White B., Wachsman E., and Traversa E. (2008) Non- Nernstian planar sensors based on YSZ with a Nb 2 O 5 electrode. Sens. Actuators B 129, 591­598. Comini E., Baratto C., Faglia G., Ferroni M., Vomiero A., and Sberveglieri G. (2009) Quasi-one dimensional metal oxide semiconductors: Preparation, characterization and application as chemical sensors. Prog. Mater. Sci. 54(1), 1­67. Comini E. (2006) Metal oxide nano-crystals for gas sensing. Anal. Chim. Acta 568(1­2), 28­40. Docquier N. and Candel S. (2002) Combustion control and sensors: A review. Prog. Energy Combustion Sci. 28, 107­150. Edenhofer B. (1995) Carburizing and nitriding industry in the eastern hemisphere. In: Proc. 2nd International Conference on Carburizing and Nitriding with Atmospheres, 6­8 December 1995, Cleveland, OH, pp. 3­8. Elumalai P., Plashnitsa V.V., Ueda T., and Miura N. (2008) Sensing characteristics of mixed-potential-type zirconia- based sensor using laminated-oxide sensing electrode. Electrochem. Commun. 10(5), 745­748. Elumalai P., Plashnitsa V.V., Ueda T., Hasei M., and Miura N. (2006) Dependence of NO 2 sensitivity on thickness of oxide-sensing electrodes for mixed-potential-type sensors using stabilized zirconia. Ionics 12, 331­337. Elumalai P., Wang J., Zhuiykov S., Terada D., Hasei M., and Miura N. (2005) Sensing characteristics of YSZ- based mixed-potential-type planar NO x sensor using NiO sensing electrodes sintered at different temperatures. J. Electrochem. Soc. 152, H95­H101. Elumalai P. and Miura N. (2005) Performances of planar NO 2 sensor using stabilized zirconia and NiO sensing electrode at high temperature. Solid State Ionics 31­34, 2517­2522. Fergus J.W. (2008) A review of electrolyte and electrode materials for high temperature electrochemical CO 2 and SO 2 gas sensors. Sens. Actuators B 134, 1034­1041. Fergus J.W. (2007a) Solid electrolyte based sensors for the measurement of CO and hydrocarbon gases. Sens. Actuators B 122, 683­693. Fergus J.W. (2007b) Materials for high temperature electrochemical NO x gas sensors. Sens. Actuators B 121, 652­663. Fleming J.W. (1977) Physical principles governing nonideal behaviour of the zirconia oxygen sensor. J. Electrochem. Soc. 124, 21­30. Funatani K. (2004) Heat treatment of automotive components: Current status and future trends. Trans. Indian Inst. Metal. 57(4), 381­396. Garzon F.H., Mukundan R., and Brosha E.L. (2000) Solid-state mixed potential gas sensors: Theory, experiments and challenges. Solid State Ionics 136/137, 633­638.