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Chapter 4. Co-electrolysis of CO2 and H2O in Solid Oxide Cells 105 4. Elikan L, Morris JP, and Wu CK, Development of a solid electrolyte carbon dioxide and water reduction system for oxygen recovery. (1972), Westinghouse Electric Corp., for NASA Langley Research Center: Washington, D.C. CR-2014. 181. 5. Spacil HS and Tedmon JCS, Electrochemical Dissociation of Water Vapor in Solid Oxide Electrolyte Cells. Journal of the Electrochemical Society, (1969). 116(12): p. 1618-1626. 6. Weissbart J and Smart WH, Study of Electrolytic Dissociation of CO2-H2O Using a Solid Oxide Electrolyte. (1967), NASA Ames Research Center: Moffett Field, California. CR-680. 7. Isenberg AO and Verostko CE, Carbon Dioxide and Water Vapor High Temperature Electrolysis. (1989), NASA Research Center. SAE Technical Paper 891506. 8. Isenberg AO and Verostko CE, Carbon Dioxide Electrolysis With Solid Oxide Electrolyte Cells for Oxygen Recovery in Life Support Systems. (1988), NASA Research Center SAE Technical Paper 881040. 9. Sridhar KR and Vaniman BT, Oxygen production on Mars using solid oxide electrolysis. Solid State Ionics, (1997). 93(3-4): p. 321-8. 10. Sridhar KR and Iacomini CS, Combined H2O/CO2 Solid Oxide Electrolysis for Mars In Situ Resource Utilization. Journal of Propulsion and Power, (2004). 20(5): p. 892-901. 11. Guan J, Doshi R, Lear G, Montgomery K, Ong E, and Minh N, Ceramic oxygen generators with thin-film zirconia electrolytes. Journal of the American Ceramic Society, (2002). 85(11): p. 2651- 2654. 12. Tao G, Sridhar KR, and Chan CL, Study of carbon dioxide electrolysis at electrode/electrolyte interface: part II. pt-YSZ cermet/YSZ interface. Solid State Ionics, (2004). 175: p. 621-624. 13. Park JY and Wachsman ED, Lower temperature electrolytic reduction of CO2 to O2 and CO with high- conductivity solid oxide bilayer electrolytes. Journal of the Electrochemical Society, (2005). 152(8): p. A1654-A1659. 14. Dönitz W, Schmidberger R, Steinheil E, and Streicher R, Hydrogen production by high temperature electrolysis of water vapour. International Journal of Hydrogen Energy, (1980). 5(1): p. 55-63. 15. Isenberg AO, Energy-Conversion Via Solid Oxide Electrolyte Electrochemical-Cells at High-Temperatures. Solid State Ionics, (1981). 3-4: p. 431-437. 16. Eguchi K, Hatagishi T, and Arai H, Power generation and steam electrolysis characteristics of an electrochemical cell with a zirconia- or ceria-based electrolyte. Solid State Ionics, (1996). 86-8: p. 1245- 1249. 17. Hauch A, Jensen SH, Ramousse S, and Mogensen M, Performance and durability of solid oxide electrolysis cells. Journal of the Electrochemical Society, (2006). 153(9): p. 1741-1747. 18. O'Brien JE, Stoots CM, Herring JS, and Hartvigsen J, Hydrogen production performance of a 10-cell planar solid-oxide electrolysis stack. Journal of Fuel Cell Science and Technology, (2006). 3(2): p. 213-219. 19. Herring JS, O'Brien JE, Stoots CM, Hawkes GL, Hartvigsen JJ, and Shahnam M, Progress in high-temperature electrolysis for hydrogen production using planar SOFC technology. International Journal of Hydrogen Energy, (2007). 32(4): p. 440-450. 20. 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. 21. 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.PDF Image | Electrolysis of CO2 and H2O
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