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2 CHEMICAL ENERGY STORAGE SOLARSTEP References: 1. Yalcin, S., A review of nuclear hydrogen production. Int. J. Hydrogen Energy, 1989. 14(8): p. 551-561. 2. Fletcher, E.A. and R.L. Moen, Hydrogen and Oxygen from Water - The use of solar energy in a one-step effusional process is considered. Science, 1977. 197: p. 1050-1056. 3. Steinfeld, A., Solar hydrogen production via a two-step water-splitting thermochemical cycle based on Zn/ZnO redox reactions. International Journal of Hydrogen Energy, 2002. 27(6): p. 611-619. 4. Nakamura, T., Hydrogen production from water utilizing solar heat at high tempera- tures. Solar Energy, 1977. 19: p. 467-475. 5. Kodama, T. and N. Gokon, Thermochemical Cycles for High-Temperature Solar Hydrogen Production. Chem. Rev, 2007. 107(10): p. 4048-4077. 6. Roeb, M., et al., Solar Hydrogen Production by a Two-Step Cycle based on Mixed Iron Oxides. Journal of Solar Energy Engineering, 2006. 128(May 2006): p. 125-133. 7. Chueh, W.C., et al., High-flux solar-driven thermochemical dissociation of CO2 and H2O using nonstoichiometric ceria. Science, 2010. 330(6012): p. 1797-1801. 8. Diver, R.B., et al., Solar Thermochemical Water-Splitting Ferrite-Cycle Heat Engines. Journal of Solar Energy Engineering, 2008. 130(4): p. 41001-41008. 9. Ishihara, H., et al., Two-step water-splitting at 1273-1623 K using yttria-stabilized zirconia-iron oxide solid solution via co-precipitation and solid-state reaction. Energy, 2008. 33(12): p. 1788-1793. 10. Abanades, S. and G. Flamant, Thermochemical hydrogen production from a two-step solar-driven water-splitting cycle based on cerium oxides. Solar Energy, 2006. 80(12): p. 1611-1623. 11. Abanades, S., et al., Novel two-step SnO2/SnO water-splitting cycle for solar thermo- chemical production of hydrogen. International Journal of Hydrogen Energy, 2008. 33(21): p. 6021-6030. 12. Sibieude, F., et al., High temperature experiments with a solar furnace: The decomposi- tion of Fe3O4, Mn3O4, CdO. International Journal of Hydrogen Energy, 1982. 7(1): p. 79-88. 13. Kodama, T., N. Gokon, and R. Yamamoto, Thermochemical two-step water splitting by ZrO2-supported NixFe{3-x}O4 for solar hydrogen production. Solar Energy, 2008. 82(1): p. 73-79. 14. Kodama, T., et al., Thermochemical hydrogen production by a redox system of ZrO2-supported Co(II)-ferrite. Solar Energy, 2005. 78(5): p. 623-631. 15. Siegel, N., et al. Reactive structures for two-step thermochemical cycles based on non-volatile metal oxides. in Proceedings of the ASME 2009 3rd International Conference of Energy Sustainability (ES2009). 2009. San Francisco, California, USA. 16. Gokon, N., et al., Thermochemical two-step water-splitting reactor with internally circulating fluidized bed for thermal reduction of ferrite particles. International Journal of Hydrogen Energy, 2008. 33(9): p. 2189-2199. 17. Roeb, M., et al., Operational strategy of a two-step thermochemical process for solar hydrogen production. International Journal of Hydrogen Energy, 2009. 34(10): p. 4537-4545. 18. Vishnevetsky, I. and M. Epstein, Tin as a Possible Candidate for Solar Thermochemical Redox Process for Hydrogen Production. Journal of Solar Energy Engineering, 2009. 131(2): p. 21007-21007. 19. Loutzenhiser, P.G., et al., CO2 Splitting via Two-Step Solar Thermochemical Cycles with Zn/ZnO and FeO/Fe3O4 Redox Reactions II: Kinetic Analysis. Energy & Fuels, 2009. 23(5): p. 2832-2839. 170PDF Image | Chemical Processes and Use of CO2
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