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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 4. Co-electrolysis of CO2 and H2O in Solid Oxide Cells 106 22. Stoots CM, O'Brien JE, Condie K, Moore-McAteer L, Housley G, Hartvigsen JJ, et al., The High-temperature Electrolysis Integrated Laboratory-scale Experiment. Nuclear Technology, (2009). 166(1): p. 32-42. 23. Brisse A, Schefold J, and Zahid M, High temperature water electrolysis in solid oxide cells. International Journal of Hydrogen Energy, (2008). 33(20): p. 5375-5382. 24. Schiller G, Ansar A, Lang M, and Patz O, High temperature water electrolysis using metal supported solid oxide electrolyser cells (SOEC). Journal of Applied Electrochemistry, (2009). 39(2): p. 293-301. 25. Green RD, Liu CC, and Adler SB, Carbon dioxide reduction on gadolinia-doped ceria cathodes. Solid State Ionics, (2008). 179(17-18): p. 647-660. 26. Bidrawn F, Kim G, Corre G, Irvine JTS, Vohs JM, and Gorte RJ, Efficient reduction of CO2 in a solid oxide electrolyzer. Electrochemical and Solid-State Letters, (2008). 11(9): p. B167-B170. 27. Ebbesen SD and Mogensen M, Electrolysis of carbon dioxide in Solid Oxide Electrolysis Cells. Journal of Power Sources, (2009). 193(1): p. 349-358. 28. Jensen SH, Høgh JVT, Barfod R, and Mogensen M. High Temperature Electrolysis of Steam and Carbon Dioxide. in Risø International Energy Conference. (2003). Risø National Laboratory, Roskilde, Denmark. 29. Stoots CM, O’Brien JE, and Hartvigsen JJ. Syngas production Via High-Temperature Co-electrolysis of Steam and Carbon Dioxide in a Solid-Oxide Stack. in Fuel Cell Science, Engineering & Technology Conference. (2007). 30. Hartvigsen J, Joshi AV, Elangovan S, Balagopal S, Gordon JH, and Hollist M, Electrochemical Cell for the production of Synthesis Gas Using Atmospheric Air and Water. (2007). WIPO WO/2007/025280. 31. Elangovan S and Hartvigsen J, Efficient Reversible Electrodes for Solid Oxide Electrolyzer Cells. (2008). WIPO WO/2008/013783. 32. Stoots CM, O'Brien JE, Herring JS, and Hartvigsen JJ, Syngas production via High-Temperature Coelectrolysis of Steam and Carbon Dioxide. Journal of Fuel Cell Science and Technology, (2009). 6(1): p. 011014-12. 33. Zhan Z, Kobsiriphat W, Wilson JR, Pillai M, Kim I, and Barnett SA, Syngas production By Coelectrolysis of CO2/H2O: The Basis for a Renewable Energy Cycle. Energy & Fuels, (2009). 23(6): p. 3089-3096. 34. 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. 35. O'Brien JE, Stoots CM, Herring JS, and Hartvigsen JJ, Performance of planar high-temperature electrolysis stacks for hydrogen production from nuclear energy. Nuclear Technology, (2007). 158: p. 118- 131. 36. Hartvigsen J, Elangovan S, O’Brien JE, Stoots CM, Herring JS, and Lessing P. in 6th European Solid Oxide Fuel Cell Forum. (2004). Lucerne: European Fuel Cell Forum. 37. Jensen SH, Hauch A, Hendriksen PV, and Mogensen M, Advanced Test Method of Solid Oxide Cells in a plug-Flow Setup. Journal of the Electrochemical Society, (2009). 156(6): p. B757-B764. 38. Hauch A, Jensen SH, Bilde-Sorensen JB, and Mogensen M, Silica segregation in the Ni/YSZ electrode. Journal of the Electrochemical Society, (2007). 154(7): p. A619-A626. 39. Winkler J, Hendriksen PV, Bonanos N, and Mogensen M, Geometric requirements of solid electrolyte cells with a reference electrode. Journal of the Electrochemical Society, (1998). 145(4): p. 1184-1192. 40. Chan SH, Chen XJ, and Khor KA, Reliability and accuracy of measured overpotential in a three-electrode fuel cell system. Journal of Applied Electrochemistry, (2001). 31(10): p. 1163-1170.

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