Electrolysis of CO2 and H2O

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Chapter 3. Sustainable Hydrocarbon Fuels by Recycling CO2 with Renewable/Nuclear Energy 92 207. Nozik AJ, Photoelectrochemical Cells. Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences, (1980). 295(1414): p. 453-470. 208. Halmann MM and Steinberg M, Greenhouse Gas Carbon Dioxide Mitigation Science and Technology. (1999), Boca Raton, Florida: Lewis Publishers. 209. Lehn J-M and Ziessel R, Photochemical generation of carbon monoxide and hydrogen by reduction of carbon dioxide and water under visible light irradiation. Proceedings of the National Academy of Sciences of the United States of America, (1982). 79(2): p. 701-704. 210. Tseng IH, Chang WC, and Wu JCS, Photoreduction of CO2 using sol-gel derived titania and titania-supported copper catalysts. Applied Catalysis B-Environmental, (2002). 37(1): p. 37-48. 211. Koci K, Obalova L, and Lacny Z, Photocatalytic reduction of CO2 over TiO2 based catalysts. Chemical Papers, (2008). 62(1): p. 1-9. 212. Varghese OK, Paulose M, LaTempa TJ, and Grimes CA, High-Rate Solar Photocatalytic Conversion of CO2 and Water Vapor to Hydrocarbon Fuels. Nano Letters, (2009). 9(2): p. 731-737. 213. Kaneco S, Katsumata H, Suzuki T, and Ohta K, Photoelectrocatalytic reduction of CO2 in LiOH/methanol at metal-modified p-InP electrodes. Applied Catalysis B-Environmental, (2006). 64(1-2): p. 139-145. 214. Conibeer GJ and Richards BS, A comparison of PV/electrolyser and photoelectrolytic technologies for use in solar to hydrogen energy storage systems. International Journal of Hydrogen Energy, (2007). 32(14): p. 2703-2711. 215. Dry ME, The Fischer-Tropsch process: 1950-2000. Catalysis Today, (2002). 71: p. 227-241. 216. Pruchnik FP, Organometallic chemistry of the transition elements, J. John P. Fackler, Editor. (1990), Plenum Press: New York. 217. Zhang YP, Fei JH, Yu YM, and Zheng XM, Methanol synthesis from CO2 hydrogenation over Cu based catalyst supported on zirconia modified gamma-Al2O3. Energy Conversion and Management, (2006). 47(18-19): p. 3360-3367. 218. Gallucci F, Paturzo L, and Basile A, An experimental study of CO2 hydrogenation into methanol involving a zeolite membrane reactor. Chemical Engineering and Processing, (2004). 43(8): p. 1029-1036. 219. Nakatsuji H and Hu ZM, Mechanism of methanol synthesis on Cu(100) and Zn/Cu(100) surfaces: Comparative dipped adcluster model study. International Journal of Quantum Chemistry, (2000). 77(1): p. 341-349. 220. Kastens ML, Dudley JF, and Troeltzsch J, Synthetic Methanol Production. Industrial & Engineering Chemistry, (1948). 40(12): p. 2230-2240. 221. Chen C-S, Cheng W-H, and Lin S-S, Study of iron-promoted Cu/SiO2 catalyst on high temperature reverse water gas shift reaction. Applied Catalysis A: General, (2004). 257(1): p. 97-106. 222. Nagai M and Kurakami T, Reverse water gas shift reaction over molybdenum carbide. Journal of Chemical Engineering of Japan, (2005). 38(10): p. 807-812. 223. Joo OS, Jung KD, Moon I, Rozovskii AY, Lin GI, Han SH, et al., Carbon dioxide hydrogenation to form methanol via a reverse-water-gas-shift reaction (the CAMERE process). Industrial & Engineering Chemistry Research, (1999). 38(5): p. 1808-1812. 224. Inui T, Highly effective conversion of carbon dioxide to valuable compounds on composite catalysts. Catalysis Today, (1996). 29(1-4): p. 329-337. 225. Kieffer R, Fujiwara M, Udron L, and Souma Y, Hydrogenation of CO and CO2 toward methanol, alcohols and hydrocarbons on promoted copper rare earth oxides catalysts. Catalysis Today, (1997). 36(1): p. 15-24. 226. Tan YS, Fujiwara M, Ando H, Xu Q, and Souma Y, Syntheses of isobutane and branched higher hydrocarbons from carbon dioxide and hydrogen over composite catalysts. Industrial & Engineering Chemistry Research, (1999). 38(9): p. 3225-3229. 227. Kim JS, Lee S, Lee SB, Choi MJ, and Lee KW. Performance of catalytic reactors for the hydrogenation of CO2 to hydrocarbons. (2006): Elsevier Science Bv. 228. Centi G and Perathoner S, Opportunities and prospects in the chemical recycling of carbon dioxide to fuels. Catalysis Today, (2009). 148(3-4): p. 191-205. 229. Takahashi H, Liu LH, Yashiro Y, Ioku K, Bignall G, Yamasaki N, et al., CO2 reduction using hydrothermal method for the selective formation of organic compounds. Journal of Materials Science, (2006). 41(5): p. 1585-1589. 230. Dry ME, Fischer–Tropsch Synthesis – Industrial, in Encyclopedia of Catalysis. (2002). 231. Mogensen M, Jensen SH, Hauch A, Chorkendorff I, and Jacobsen T. Performance of Reversible Solid Oxide Cells: A Review. in Proceedings of the 7th European Solid Oxide Fuel Cell Forum. (2006). Lucerne (CH): European Fuel Cell Forum, Oberrohrdorf, 2006.

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