Highly enhanced densification and grain growth of Ce0.9Gd0.1O1.95-delta (CGO, gadolinium-doped ceria, with 10 mol% Gd) is achieved in low oxygen activity atmospheres. However, the material can suffer mechanical failures during cooling when the re-oxidation process-is not controlled due to-the large volume changes. In this work, the redox process of COO is investigated using dilatometry, microscopy, electrochemical impedance spectroscopy and thermodynamic analysis. In addition, the conditions allowing controlled re-oxidation and cooling in order to preserve the mechanical integrity of the CGO component are defined: this can be achieved over a wide temperature range (800-1200 degrees C) by gradually increasing the oxygen content of the atmosphere. It is found that the electrical conductivity of the COO, particularly at low temperature (<450 degrees C) is influenced by the sintering and controlled re-oxidation conditions. An increase in activation energy for conduction at low temperature is observed as the re-oxidation temperature decreases. Moreover it was observed that the ionic conductivity blocking effect, usually associated with grain boundary contributions, is not influenced by the grain size but rather by the chemical history of the material. (C) 2014 The Electrochemical Society. All rights reserved.

Ni, D.w., Glasscock, J.a., Pons, A., Zhang, W., Prasad, A., Sanna, S., et al. (2014). Densification of highly defective ceria by high temperature controlled re-oxidation. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 161(11), F3072-F3078 [10.1149/2.0121411jes].

Densification of highly defective ceria by high temperature controlled re-oxidation

Sanna S.;
2014-01-01

Abstract

Highly enhanced densification and grain growth of Ce0.9Gd0.1O1.95-delta (CGO, gadolinium-doped ceria, with 10 mol% Gd) is achieved in low oxygen activity atmospheres. However, the material can suffer mechanical failures during cooling when the re-oxidation process-is not controlled due to-the large volume changes. In this work, the redox process of COO is investigated using dilatometry, microscopy, electrochemical impedance spectroscopy and thermodynamic analysis. In addition, the conditions allowing controlled re-oxidation and cooling in order to preserve the mechanical integrity of the CGO component are defined: this can be achieved over a wide temperature range (800-1200 degrees C) by gradually increasing the oxygen content of the atmosphere. It is found that the electrical conductivity of the COO, particularly at low temperature (<450 degrees C) is influenced by the sintering and controlled re-oxidation conditions. An increase in activation energy for conduction at low temperature is observed as the re-oxidation temperature decreases. Moreover it was observed that the ionic conductivity blocking effect, usually associated with grain boundary contributions, is not influenced by the grain size but rather by the chemical history of the material. (C) 2014 The Electrochemical Society. All rights reserved.
2014
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore FIS/01 - FISICA SPERIMENTALE
English
Con Impact Factor ISI
Ni, D.w., Glasscock, J.a., Pons, A., Zhang, W., Prasad, A., Sanna, S., et al. (2014). Densification of highly defective ceria by high temperature controlled re-oxidation. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 161(11), F3072-F3078 [10.1149/2.0121411jes].
Ni, Dw; Glasscock, Ja; Pons, A; Zhang, W; Prasad, A; Sanna, S; Pryds, N; Esposito, V
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/224415
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