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| Structure and Properties of Perovskite Oxides | p. 1 |
| Introduction | p. 1 |
| Structure of Perovskite Oxides | p. 2 |
| Typical Properties of Perovskite Oxides | p. 7 |
| Preparation of Perovskite Oxide | p. 12 |
| Perovskite Oxides for Solid Oxide Fuel Cells (SOFCs) | p. 15 |
| References | p. 16 |
| Overview of Intermediate-Temperature Solid Oxide Fuel Cells | p. 17 |
| Introduction | p. 17 |
| Characteristic Features of Solid Oxide Fuel Cells | p. 18 |
| Merits and Demerits of SOFCs | p. 18 |
| Issues for Intermediate-Temperature SOFCs | p. 20 |
| Stack Design | p. 35 |
| Development of Intermediate Temperature SOFC Stacks/Systems | p. 36 |
| Kyocera/Osaka Gas | p. 36 |
| Mitsubishi Materials Corporation | p. 37 |
| Micro SOFCs by TOTO | p. 38 |
| Perspective | p. 38 |
| Applications | p. 38 |
| Fuel Flexibility and Reliability in Relationship to Intermediate-Temperature SOFCs | p. 41 |
| Hybrid Systems | p. 41 |
| Summary | p. 42 |
| References | p. 42 |
| Ionic Conduction in Perovskite-Type Compounds | p. 45 |
| Introduction | p. 45 |
| Conduction Behavior of Perovskite-Type Compounds | p. 46 |
| Early Studies on Ionic Conduction in Perovskite-TypeOxides | p. 49 |
| Oxide Ion Conduction | p. 52 |
| Proton Conduction | p. 55 |
| Lithium Ion Conduction | p. 59 |
| Halide Ion Conduction | p. 60 |
| Silver Ion Conduction | p. 61 |
| References | p. 62 |
| Oxide Ion Conductivity in Perovskite Oxide for SOFC Electrolyte | p. 65 |
| Introduction | p. 65 |
| Oxide Ion Conductivity in Oxide | p. 66 |
| Oxide Ion Conductivity in Perovskite Oxides | p. 68 |
| LaGa03-Based Oxide Doped with Sr and Mg (LSGM)as a New Oxide Ion Conductor | p. 71 |
| Effects of Dopant for La and Ga Site | p. 71 |
| Transition Metal Doping Effects on Oxide Ion Conductivity in LSGM | p. 74 |
| Basic Properties of the LSGM Electrolyte System | p. 77 |
| Phase Diagram of La-Sr-Ga-Mg-0 | p. 77 |
| Reactivity with SOFC Component | p. 77 |
| Thermal Expansion Behavior and Other Properties | p. 78 |
| Behavior of Minor Carrier | p. 79 |
| Diffusivity of Oxide Ion | p. 82 |
| Performance of a Single Cell Using LSGM Electrolyte | p. 84 |
| Preparation of LaGa03 Thin-Film Electrolytes for Application at Temperatures Lower Than 773 K | p. 87 |
| Oxide Ion Conductivity in the Perovskite-Related Oxides | p. 89 |
| Summary | p. 92 |
| References | p. 92 |
| Diffusivity of the Oxide Ion in Perovskite Oxides | p. 95 |
| Introduction | p. 95 |
| Definitions of Diffusion Coefficients | p. 96 |
| The Oxygen Tracer Diffusion Coefficient | p. 96 |
| The Surface Exchange Coefficient | p. 98 |
| Defect Chemistry and Oxygen Transport | p. 99 |
| Defect Equilibria | p. 99 |
| Diffusion in Mixed Electronic-Ionic Conducting Oxides (MEICs) | p. 102 |
| Effect of A-Site Cation on Oxygen Diffusivity | p. 103 |
| The Effect of B-Site Cation on Oxygen Diffusivity | p. 104 |
| The Effect of A-Site Cation Vacancies on Oxygen Diffusivity | p. 105 |
| Temperature Dependence of the Oxygen Diffusion Coefficient | p. 105 |
| The Effect of Oxygen Pressure | p. 108 |
| Oxygen Diffusion in Ionic Conducting Perovskites | p. 108 |
| Oxygen Diffusion in Perovskite-Reiated Materials | p. 110 |
| Correlations Between Oxygen Diffusion Parameters | p. 110 |
| Conclusions | p. 112 |
| References | p. 113 |
| Structural Disorder, Diffusion Pathway of Mobile Oxide Ions, and Crystal Structure in Perovskite-Type Oxides and Related Materials | p. 117 |
| Introduction | p. 117 |
| High-Temperature Neutron Powder Diffractometry | p. 118 |
| Data Processing for Elucidation of the Diffusion Paths of Mobile Oxide Ions in Ionic Conductors: Rietveld Analysis, Maximum Entropy Method (MEM), and MEM-Based Pattern Fitting (MPF) | p. 120 |
| Diffusion Path of Oxide Ions in the Fast Oxide Ion Conductor (La0.8Sr0.2)(Ga0.8Mg0.15Co0.05)O2.8 [10] | p. 121 |
| Introduction | p. 121 |
| Experiments and Data Processing | p. 121 |
| Results and Discussion | p. 122 |
| Diffusion Path of Oxide Ions in an Oxide Ion Conductor, La0.64(Ti0.92Nb0.08)O2.99, with a Double Perovskite-Type Structure [11] | p. 126 |
| Introduction | p. 126 |
| Experiments and Data Processing | p. 126 |
| Results and Discussion | p. 127 |
| Crystal Structure and Structural Disorder of Oxide Ions in Cathode Materials, Lao.6Sro.4CoO3-? and La0.6Sr0.4Co0.8Fe0.2O3-?, with a Cubic Perovskite-Type Structure [12, 13] | p. 131 |
| Introduction | p. 131 |
| Experiments and Data Processing | p. 131 |
| Results and Discussion | p. 132 |
| Structural Disorder and Diffusion Path of Oxide Ions in a Doped Pr2Ni04-Based Mixed Ionic-Electronic Conductor (Pr0.9La0.1)2(Ni0.74Cu0.21Ga0.05)O4 + ? with a K2NiF4-Type Structure [15] | p. 137 |
| Introduction | p. 137 |
| Experiments and Data Processing | p. 138 |
| Results and Discussion | p. 138 |
| Conclusions | p. 141 |
| References | p. 143 |
| Perovskite Oxide for Cathode of SOFCs | p. 147 |
| Introduction | p. 147 |
| Properties Required for a Cathode Material | p. 148 |
| Catalytic Activity | p. 148 |
| Electronic Conductivity | p. 149 |
| Oxygen Transport (Bulk or Surface) | p. 151 |
| Chemical Stability and Compatibility | p. 152 |
| Morphological Stability | p. 152 |
| General Description of Cathode Reaction and Polarization | p. 153 |
| Oxygen Electrode Process | p. 153 |
| Equivalent Circuit for a Cathode-Electrolyte Interface | p. 154 |
| Cathode for High-Temperature SOFC: (La, Sr)Mn03 | p. 156 |
| Transport Properties and Electrochemical Reaction | p. 156 |
| Chemical and Morphological Stability of LSM | p. 158 |
| Cathode for Intermediate-Temperature SOFC: (La, Sr)Co03, (La, Sr)(Co, Fe)03 | p. 160 |
| General Features of Co-Based Perovskite Cathode | p. 160 |
| Electrochemical Reaction of a Model Electrode: A (La,Sr)Co03 Dense Film | p. 161 |
| Electrochemical Response of (La, Sr)Co03 on Zirconia with and Without Ceria Interlayer | p. 163 |
| Summary | p. 164 |
| References | p. 165 |
| Perovskite Oxide Anodes for SOFCs | p. 167 |
| Introduction | p. 167 |
| Anode Materials for SOFCs | p. 168 |
| Perovskite Chemistry | p. 169 |
| Doping, Nonstoichiometry, and Conductivity | p. 170 |
| Perovskite Anode Materials | p. 173 |
| A(B,B')03 Perovskites | p. 177 |
| Tungsten Bronze Anode Materials | p. 178 |
| Anode Materials for All-Perovskite Fuel Cells | p. 179 |
| Conclusions | p. 180 |
| References | p. 180 |
| Intermediate-Temperature Solid Oxide Fuel Cells Using LaGa03 | p. 183 |
| Introduction | p. 183 |
| Cell Development | p. 184 |
| Electrolyte | p. 184 |
| Anode | p. 185 |
| Cathode | p. 188 |
| 9.3 | p. 190 |
| 9.4 | p. 192 |
| A 1-kW Class Single-Stack Module | p. 192 |
| A 10-kW Class Multi-Stack Module | p. 195 |
| System Development | p. 196 |
| Stack Modeling | p. 198 |
| References | p. 202 |
| Quick-Start-Up Type SOFC Using LaGa03-Based New Electrolyte | p. 205 |
| Introduction | p. 205 |
| Micro-Tubular Cell Development | p. 206 |
| Rapid Thermal Cycling | p. 211 |
| Fuel Flexibility | p. 211 |
| Stack Development | p. 214 |
| Summary | p. 216 |
| References | p. 216 |
| Proton Conductivity in Perovskite Oxides | p. 217 |
| Introduction | p. 217 |
| Proton Conductivity in Acceptor-Doped Perovskites | p. 219 |
| Protons in Oxides | p. 219 |
| Hydration of Acceptor-Doped Perovskites | p. 219 |
| Proton Diffusion | p. 222 |
| Charge Mobility and Conductivity of Protons | p. 224 |
| Proton Conductivity in Acceptor-Doped Simple Perovskites, AB03 | p. 225 |
| Effects of Defect-Acceptor Interactions | p. 228 |
| Grain Boundaries | p. 229 |
| Proton Conduction in Inherently Oxygen-Deficient Perovskites | p. 230 |
| Hydration of Ordered Oxygen Deficiency | p. 230 |
| Nomenclature and Hydration of Disordered Intrinsic Oxygen Deficiency | p. 231 |
| Order-Disorder Reactions Involving Hydrated Inherently Oxygen-Deficient Perovskites (Oxyhydroxides) | p. 232 |
| Hydration of Undoped Perovskites | p. 233 |
| Proton Conductivity in Selected Classes Of Non-Perovskite Oxides and Phosphates | p. 233 |
| Developments of Proton-Conducting SOFCs | p. 236 |
| Conclusions | p. 237 |
| References | p. 238 |
| Proton Conduction in Cerium- and Zirconium-Based Perovskite Oxides | p. 243 |
| Introduction | p. 243 |
| Conductivity | p. 245 |
| Activation/Deactivation of Electrodes | p. 247 |
| Stability | p. 248 |
| Dopant | p. 251 |
| Proton Hole Mixed Conduction | p. 255 |
| References | p. 258 |
| Mechanisms of Proton Conduction in Perovskite-Type Oxides | p. 261 |
| Introduction | p. 261 |
| Proton Sites | p. 262 |
| Mechanisms of Proton Conduction (Undoped, Cubic Perovskites) | p. 264 |
| Complications (Symmetry Reduction, Doping, Mixed Site Occupancy) | p. 268 |
| Implications for the Development of Proton-Conducting Electrolytes for Fuel Cell Applications | p. 270 |
| References | p. 271 |
| Intermediate-Temperature SOFCs Using Proton-Conducting Perovskite | p. 273 |
| Introduction | p. 273 |
| Preparation of Fuel Cells | p. 277 |
| Characterization of Fuel Cells | p. 277 |
| Operation and Evaluation of Fuel Cells | p. 279 |
| Conclusion | p. 282 |
| References | p. 283 |
| LaCr03-Based Perovskite for SOFC Interconnects | p. 285 |
| Introduction | p. 285 |
| Sintering Properties and Chemical Compatibility with the Other Components | p. 286 |
| Electronic Conductivity | p. 287 |
| Defect Chemistry and Oxygen Electrochemical Leak | p. 289 |
| Lattice Expansion During Reduction and Temperature Change | p. 293 |
| Mechanical Strength | p. 293 |
| Summary | p. 294 |
| References | p. 295 |
| Index | p. 297 |
| Table of Contents provided by Ingram. All Rights Reserved. |
ISBN: 9780387777078
ISBN-10: 0387777075
Series: Fuel Cells and Hydrogen Energy
Published: 25th June 2009
Format: Paperback
Language: English
Number of Pages: 320
Audience: General Adult
Publisher: Springer Nature B.V.
Country of Publication: US
Dimensions (cm): 23.39 x 15.6 x 1.91
Weight (kg): 0.66
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