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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 5. Aspects of Metal-YSZ Electrode Kinetics 170 55. Gubner A, Landes H, Metzger J, Seeg H, and Stübner R, in Proceedings of 5th International Symposium on Solid Oxide Fuel Cells (SOFC-V), U. Stimming, et al., Editors. (1997): Pennington, NJ. p. 884. 56. Hauch A, Ebbesen SD, Jensen SH, and Mogensen M, Solid Oxide Electrolysis Cells: Microstructure and Degradation of the Ni/YSZ Electrode. Journal of the Electrochemical Society, (2008). 11(155): p. B1184- B1193. 57. Du K, Ernst F, Garrels M, and Payer J, Formation of nickel nanoparticles in nickel-ceramic anodes during operation of solid-oxide fuel cells. International Journal of Materials Research, (2008). 99(5): p. 548-552. 58. Sehested J, Gelten JAP, Remediakis IN, Bengaard H, and Norskov JK, Sintering of nickel steam- reforming catalysts: effects of temperature and steam and hydrogen pressures. Journal of Catalysis, (2004). 223(2): p. 432-443. 59. van Hassel BA, Boukamp BA, and Burggraaf AJ, Electrode polarization at the Au, O2(g)/yttria stabilized zirconia interface. part I: Theoretical considerations of reaction model. Solid State Ionics, (1991). 48(1-2): p. 139-154. 60. vanHasselBA,BoukampBA,andBurggraafAJ,ElectrodepolarizationattheAu,O2(g)/yttriastabilized zirconia interface. part II: electrochemical measurements and analysis. Solid State Ionics, (1991). 48(1-2): p. 155-171. 61. Bai L and Conway BE, AC Impedance of Faradaic Reactions Involving Electrosorbed Intermediates: Examination of Conditions Leading to pseudoinductive Behavior Represented in Three-Dimensional Impedance Spectroscopy Diagrams. Journal of the Electrochemical Society, (1991). 138(10): p. 2897-2907. 62. Bai L and Conway BE, Three-dimensional impedance spectroscopy diagrams for processes involving electrosorbed intermediates, introducing the third electrode-potential variable--examination of conditions leading to pseudo-inductive behavior. Electrochimica Acta, (1993). 38(14): p. 1803-1815. 63. Schouler EJL and Kleitz M, Electrocatalysis and Inductive Effects at the Gas, pt/Stabilized Zirconia Interface. Journal of the Electrochemical Society, (1987). 134(5): p. 1045-1050. 64. Klemensø T and Mogensen M, Ni-YSZ solid oxide fuel cell anode behavior upon redox cycling based on electrical characterization. Journal of the American Ceramic Society, (2007). 90(11): p. 3582-3588. 65. Sarantaridis D and Atkinson A, Redox cycling of Ni-based solid oxide fuel cell anodes: A review. Fuel Cells, (2007). 7(3): p. 246-258. 66. Pihlatie M, Ramos T, and Kaiser A, Testing and improving the redox stability of Ni-based solid oxide fuel cells. Journal of Power Sources, (2009). 193(1): p. 322-330. 67. Nguyen BC and Mason DM, Mechanisms of catalytic oxidation of hydrocarbons in a solid-electrolyte fuel cell, in Other Information: In Brookhaven National Lab., proceedings of the conference on high temperature solid oxide electrolytes, Volume 1, 331-347, N--84-21342 11-76. (1983). Medium: X; Size: Pages: 17. 68. Mason DM, Method for producing Electricity from a Fuel Cell Having Solid-oxide Ionic Electrolyte. (1984). USPTO 4,459,340. 69. Stevenson DA and Frank CW, Electrochemical abatement of pollutants NOx and SOx in combustion exhaust gases employing a solid-oxide electrolyte. (1989). Medium: ED; Size: Pages: (3 p). 70. Thorp JS, Aypar A, and Ross JS, Electron spin resonance in single crystal yttria stabilized zirconia. Journal of Materials Science, (1972). 7(7): p. 729-734. 71. Farley J, Thorp J, Ross J, and Saunders G, Effect of current-blackening on the elastic constants of yttria- stabilised zirconia. Journal of Materials Science, (1972). 7(4): p. 475-476. 72. Moghadam FK, Yamashita T, and Stevenson DA, Characterization of the current-blackening phenomena in scandia stabilized zirconia using transmission electron microscopy. Journal of Materials Science, (1983). 18(8): p. 2255-2259. 73. Wright DA, Thorp JS, Aypar A, and Buckley HP, Optical absorption in current-blackened yttria-stabilized zirconia. Journal of Materials Science, (1973). 8(6): p. 876-882. 74. Kleitz M, Levy M, Fouletier J, and Fabry P, in Science and Technology of Zirconia vol. 3, A.H. Heuer and L.W. Hobbs, Editors. (1981), The Am. Ceram. Soc.: Columbus p. 337. 75. Boulfrad S, Djurado E, and Fouletier J, Electrochemical characterization of nanostructured zirconias. Solid State Ionics, (2009). 180(14-16): p. 978-983.

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