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Electrolysis of CO2 and H2O

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Electrolysis of CO2 and H2O ( electrolysis-co2-and-h2o )

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Chapter 6. Molybdate Based Ceramic Electrode Materials 212 3. Fergus JW, Oxide anode materials for solid oxide fuel cells. Solid State Ionics, (2006). 177(17-18): p. 1529- 1541. 4. Goodenough JB and Huang YH, Alternative anode materials for solid oxide fuel cells. Journal of Power Sources, (2007). 173(1): p. 1-10. 5. Sun CW and Stimming U, Recent anode advances in solid oxide fuel cells. Journal of Power Sources, (2007). 171(2): p. 247-260. 6. Irvine JTS, Perovskite Oxide Anodes for SOFCs, in Perovskite Oxide for Solid Oxide Fuel Cells, T. Ishihara, Editor. (2009). p. 167-182. 7. Park S, Vohs JM, and Gorte RJ, Direct oxidation of hydrocarbons in a solid-oxide fuel cell. Nature, (2000). 404(6775): p. 265-7. 8. Marina OA, Pederson LR, Williams MC, Coffey GW, Meinhardt KD, Nguyen CD, et al., Electrode performance in reversible solid oxide fuel cells. Journal of the Electrochemical Society, (2007). 154(5): p. B452-B459. 9. Blennow P, Strontium Titanate-based Anodes for Solid Oxide Fuel Cells, Ph.D. thesis. (2007), Lund University. p. 209. 10. Blennow P, Hansen KK, Wallenberg LR, and Mogensen M, Strontium Titanate-based Composite Anodes for Solid Oxide Fuel Cells. ECS Transactions, (2008). 13(26): p. 181-194. 11. Blennow P, Hjelm J, Klemenso T, Persson A, Brodersen K, Srivastava A, et al., Development of planar Metal Supported SOFC with Novel Cermet Anode. ECS Transactions, (2009). 25(2): p. 701-710. 12. Goodenough JB, Electronic and ionic transport properties and other physical aspects of perovskites. Reports on Progress in Physics, (2004). 67(11): p. 1915-1993. 13. Jiang SP, A review of wet impregnation - An alternative method for the fabrication of high performance and nano- structured electrodes of solid oxide fuel cells. Materials Science and Engineering a-Structural Materials Properties Microstructure and Processing, (2006). 418(1-2): p. 199-210. 14. Sholklapper TZ, Kurokawa H, Jacobson CP, Visco SJ, and De Jonghe LC, Nanostructured Solid Oxide Fuel Cell Electrodes. Nano Letters, (2007). 7(7): p. 2136-2141. 15. Kim G, Corre G, Irvine JTS, Vohs JM, and Gorte RJ, Engineering composite oxide SOFC anodes for efficient oxidation of methane. Electrochemical and Solid State Letters, (2008). 11(2): p. B16-B19. 16. Kim G, Lee S, Shin JY, Corre G, Irvine JTS, Vohs JM, et al., Investigation of the Structural and Catalytic Requirements for High-Performance SOFC Anodes Formed by Infiltration of LSCM. Electrochemical and Solid-State Letters, (2009). 12(3): p. B48-B52. 17. Lacorre P, Goutenoire F, Bohnke O, Retoux R, and Laligant Y, Designing fast oxide-ion conductors based on La2Mo2O9. Nature, (2000). 404(6780): p. 856-858. 18. Porat O, Heremans C, and Tuller HL, Stability and mixed ionic electronic conduction in Gd2(Ti1-xMox)2O7 under anodic conditions. Solid State Ionics, (1997). 94(1-4): p. 75-83. 19. Holtappels P, Poulsen FW, and Mogensen M, Electrical conductivities and chemical stabilities of mixed conducting pyrochlores for SOFC applications. Solid State Ionics, (2000). 135(1-4): p. 675-679. 20. Zha S, Cheng Z, and Liu M, A Sulfur-Tolerant Anode Material for SOFCs. Electrochemical and Solid- State Letters, (2005). 8(8): p. A406-A408. 21. Huang Y-H, Dass RI, Denyszyn JC, and Goodenough JB, Synthesis and Characterization of Sr2MgMoO6-δ. Journal of the Electrochemical Society, (2006). 153(7): p. A1266-A1272. 22. Huang Y-H, Dass RI, Xing Z-L, and Goodenough JB, Double perovskites as Anode Materials for Solid- Oxide Fuel Cells. Science, (2006). 312(5771): p. 254-257. 23. Ji Y, Huang Y-H, Ying J-R, and Goodenough JB, Electrochemical performance of La-doped Sr2MgMoO6-δ in natural gas. Electrochemistry Communications, (2007). 9(8): p. 1881-1885. 24. Lu XC and Zhu JH, Amorphous Ceramic Material as Sulfur-Tolerant Anode for SOFC. Journal of the Electrochemical Society, (2008). 155(10): p. B1053-B1057. 25. Greenblatt M, Molybdenum and Tungsten Bronzes: Low-Dimensional Metals with Unusual properties, in Physics and chemistry of low-dimensional inorganic conductors, C. Schlenker, Editor. (1996). p. 15. 26. Xue Y, Zhang Y, and Zhang P, Theory of the color change of NaxWO3 as a function of Na-charge doping. Physical Review B (Condensed Matter and Materials Physics), (2009). 79(20): p. 205113-4.

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