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 169 31. Vogler M, Bieberle-Hutter A, Gauckler L, Warnatz J, and Bessler WG, Modelling Study of Surface Reactions, Diffusion, and Spillover at a Ni/YSZ patterned Anode. Journal of the Electrochemical Society, (2009). 156(5): p. B663-B672. 32. Matsuzaki Y, Hishinuma M, and Yasuda I. Electrochemical Characteristics of a Ni-YSZ Cermet Electrode on YSZ in a H2-H2O-CO-CO2 System. in Sixth Intl Symp. on Solid Oxide Fuel Cells (SOFC-VI). (1999). Honolulu, Hawaii: Electrochemical Society. 33. Holtappels P, De Haart LGJ, Stimming U, Vinke IC, and Mogensen M, Reaction of CO/CO2 gas mixtures on Ni-YSZ cermet electrodes. Journal of Applied Electrochemistry, (1999). 29(5): p. 561-568. 34. Eguchi K, Setoguchi T, Okamoto K, and Arai H. An Investigation of Anode Material and Anodic Reaction for Solid Oxide Fuel Cell. in Third International Symposium on Solid Oxide Fuel Cells (SOFC III). (1993). Honolulu, Hawaii: Electrochemical Society. 35. Vels Jensen K, Primdahl S, Chorkendorff I, and Mogensen M, Microstructural and chemical changes at the Ni/YSZ interface. Solid State Ionics, (2001). 144(3-4): p. 197-209. 36. Vels Jensen K, Wallenberg R, Chorkendorff I, and Mogensen M, Effect of impurities on structural and electrochemical properties of the Ni-YSZ interface. Solid State Ionics, (2003). 160(1-2): p. 27-37. 37. Schmidt MS, Hansen KV, Norrman K, and Mogensen M, Characterisation of the Ni/ScYSZ interface in a model solid oxide fuel cell anode. Solid State Ionics, (2008). 179(39): p. 2290-2298. 38. Mogensen M and Hansen KV, Impact of impurities and interface reaction on electrochemical activity, in Handbook of Fuel Cells – Fundamentals, Technology and Applications, W. Vielstich, H. Yokokawa, and H.A. Gasteiger, Editors. (2009), John Wiley & Songs, Ltd. 39. Schmidt MS, Effects of dopants and trace elements at the Ni / ScYSZ interface, PhD thesis. (2008), University of Southern Denmark. 40. Newman J, Resistance for Flow of Current to a Disk. Journal of the Electrochemical Society, (1966). 113(5): p. 501-502. 41. Nielsen J and Jacobsen T, Three-phase-boundary dynamics at pt/YSZ microelectrodes. Solid State Ionics, (2007). 178(13-14): p. 1001-1009. 42. Nielsen J and Jacobsen T, Three-Phase-Boundary dynamics at metal/YSZ microelectrodes. Solid State Ionics, (2008). 178(33-34): p. 1769-1776. 43. Schmidt MS, Hansen KV, Norrman K, and Mogensen M, Effects of trace elements at the Ni/ScYSZ interface in a model solid oxide fuel cell anode. Solid State Ionics, (2008). 179(27-32): p. 1436-1441. 44. Appel CC, Bonanos N, Horsewell A, and Linderoth S, Ageing behaviour of zirconia stabilised by yttria and manganese oxide. Journal of Materials Science, (2001). 36(18): p. 4493-4501. 45. Barsoukov E and Macdonald JR, Impedance Spectroscopy: Theory, Experiment, and Applications. 2 ed. (2005): Wiley-Interscience. 616. 46. Primdahl S and Mogensen M, Gas conversion impedance: A test geometry effect in characterization of solid oxide fuel cell anodes. Journal of the Electrochemical Society, (1998). 145(7): p. 2431-2438. 47. Primdahl S and Mogensen M, Gas diffusion impedance in characterization of solid oxide fuel cell anodes. Journal of the Electrochemical Society, (1999). 146(8): p. 2827-2833. 48. Jacobsen T, Hendriksen PV, and Koch S, Diffusion and conversion impedance in solid oxide fuel cells. Electrochimica Acta, (2008). 53(25): p. 7500-7508. 49. Geyer J, Kohlmuller H, Landes H, and Stubner R, Investigations into the Kinetics of the Ni-YSZ-cermet- anode of a Solid Oxide Fuel Cell. Electrochemical Proceedings, (1997). 97-18: p. 585-594. 50. Jensen SH, Larsen PH, and Mogensen M, Hydrogen and synthetic fuel production from renewable energy sources. International Journal of Hydrogen Energy, (2007). 32(15): p. 3253-3257. 51. Ebbesen SD and Mogensen M, Electrolysis of carbon dioxide in Solid Oxide Electrolysis Cells. Journal of Power Sources, (2009). 193(1): p. 349-358. 52. Ebbesen SD, Graves C, and Mogensen M, Production of Synthetic Fuels by Co-Electrolysis of Steam and Carbon Dioxide. International Journal of Green Energy, (2009). 6(6): p. 646 – 660. 53. Guth U and Zosel J, Electrochemical solid electrolyte gas sensors - Hydrocarbon and NOx analysis in exhaust gases. Ionics, (2004). 10(5-6): p. 366-377. 54. FactSage5.5software.

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