參考文獻 |
參考文獻
[1] 鄭耀宗,科學發展,367期,2003年7月。
[2] 陳翰全,「CuO/Ce1-xZrxO2觸媒富氫中CO的選擇性氧化反應研究」,國立中央大學,化學工程與材料工程研究所,碩士論文,民國93年。
[3] 黃振瑋,「CuO/Ce1-xSnxO2觸媒富氫中CO的選擇性氧化反應研究」,國立中央大學,化學工程與材料工程研究所,碩士論文,民國94年。
[4] X. Tang, Y. Xu, W. Shen, “Promoting effect of copper on the catalytic activity of MnOx-CeO2 mixed oxide for complete oxidation of benzene,” Chem. Eng. J xxx (2008) xxx.
[5] X. Tang, Y. Li, X. Huang, “MnOx-CeO2 mixed oxide catalysts for complete oxidation of formaldehyde :Effect of preparation method and calcinations temperature,” Appl. Catal. B:62 (2006) 265-273.
[6] M. Haruta, N. Yamada, T. Kobayashi, S.J. Iijima, “Gold catalysts prepared by coprecipitation for low-temperature oxidation of hydrogen and of carbon monoxide,” J. Catal. 115 (1989) 301-309.
[7] M. Haruta, S. Tsubota, T. Kobayashi, H. Kageyama, M.J. Genet, B. Delmon, “Low-Temperature Oxidation of CO over Gold Supported on TiO2, α-Fe2O3, and Co3O4,” J. Catal. 144 (1993) 175-192.
[8] M. Haruta, “Size- and support-dependency in the catalysis of gold,” Catal. Today 36 (1997) 153-166.
[9] M. Harut, M. Date, “Advances in the catalysis of Au nanoparticles,” Appl. Catal. A: Gen. 222 (2001) 427-437.
[10] F. Boccuzzi, A. Cgiorino, M. Manzoli, P. Lu, T. Akita, S. Ichikawa, M. Haruta, “Au/TiO2 Nanosized Samples: A Catalytic, TEM, and FTIR Study of the Effect of Calcination Temperature on the CO Oxidation,” J. Catal. 202 (2001) 256-267.
[11] M. Haruta,S. Tsubota, T. Kobayashi, H. Kageyama,M.J. Genet, B. Delmon, “Low-Temperature Oxidation of CO over Gold Supported on TiO2, α-Fe2O3, and Co3O4,” J. Catal. 144 (1993) 175-192.
[12] A. Luengnaruemitchai, S. Osuwan, E. Gulari, “Selective catalytic oxidation of CO in the presence of H2 over gold catalystInt,” J. Hydrogen Energ. 29 (2004)429-435.
[13] G. K. Bethke, H. H. Kung, “Selective CO oxidation in a hydrogen-rich stream over Au/γ-Al2O3 catalysts,” Appl. Catal. A: Gen. 194 (2000) 43-53.
[14] N.A. Hodge, C.J. Kiely, R. Whyman, M.R.H. Siddiqui, G.J. Hutchings, Q. A. Pankhurst, F. E. Wangner, R. R. Rajaram, S. E. Golunski, “Microstructural comparison of calcined and uncalcined gold/iron-oxide catalysts for low-temperature CO oxidation,” Catal. Today 72 (2002) 133-144.
[15] M. Brown, A. Green, US Patent 3,088,919,1963.
[16] M.J. Kahlich, H.A. Gasteiger, R.J. Behm, “Kinetics of the Selective CO Oxidation in H2-Rich Gas on Pt/Al2O3,” J. Catal. 171 (1997) 93-105.
[17] H. Igarashi, H. Uchida, M. Suzuki, Y. Sasaki, M. Watanabe, “Removal of carbon monoxide from hydrogen-rich fuels by selective oxidation over platinum catalyst supported on zeolite,” Appl. Catal. A: Gen. 159 (1997) 159-169.
[18] A. Manasilp, E. Gulari, “Selective CO oxidation over Pt/alumina catalysts for fuel cell applications,” Appl. Catal. B: Environ. 37 (2002) 17-25.
[19] X. Liu, O. Korotkikh, R. Farrauto, “Selective catalytic oxidation of CO in H2: structural study of Fe oxide-promoted Pt/alumina catalystAppl.,” Catal. A: Gen. 226 (2002) 293-303.
[20] A. Sirijaruphan, J.G. Goodwin, “Effect of Fe promotion on the surface reaction parameters of Pt/γ -Al2O3 for the selective oxidation of CO,” J. Catal, 224 (2004) 304-313.
[21] I. Hyuk Son, “Study of Ce-Pt/γ-Al2O3 for the selective oxidation of CO in H2 for application to PEFCs: Effect of gases,” J. P. S. 159 (2006) 1266-1273.
[22] T. Ince, G. Uysal, A. Nilgun Akın, R. Yıldırım, “Selective low-temperature CO oxidation over Pt-Co-Ce/Al2O3 in hydrogen-rich streams,” Appl. Catal. A: Gen. 292 (2005) 171-176.
[23] J.L. Ayastuy, M.P. Gonzalez-Marcos, J.R. Gonzalez-Velasco, M. A. Gutierrez-Ortiz, “MnOx/Pt/Al2O3 catalysts for CO oxidation in H2-rich streams,” Appl. Catal. B: Environ. 70(2007) 532-541.
[24] J.L. Ayastuy, A. Gil-Rodriguez, M.P. Gonzalez-Marcos, M.A. Gutierrez-Ortiz, “Effect of process variables on Pt/CeO2 catalyst behaviour for the PROX reaction,” I. J. H. Eng 31 (2006) 2231-2242.
[25] J.L. Ayastuy, M.P. Gonzalez-Marcos, A. Gil-Rodrıguez, J.R. Gonzalez-Velasco, M.A.Gutierrez-Ortiz,“Selective CO oxidation over CexZr1-xO2-supported Pt catalysts,” Catal. Today 116 (2006) 391-399.
[26] M. Haruta, S. Tsubota, T. Kobayashi, H. Kageyama, M.J. Genet, B. Delmon, “Low-Temperature Oxidation of CO over Gold Supported on TiO2, α-Fe2O3, and Co3O4,“ J. Catal., 144 (1993) 175-192.
[27] G. Avgouropoulos, T. Ioannides, Ch. Papadopoulou, “A comparative study of Pt/γ-Al2O3, Au/α-Fe2O3 and CuO–CeO2 catalysts for the selective oxidation of carbon monoxide in excess hydrogen,” J. Batistac, Catal. Today 75 (2002) 157-167.
[28] H. Tanaka, S.I. Ito, S. Kameoka, “Promoting effect of potassium in selective oxidation of CO in hydrogen-rich stream on Rh catalysts,” K. Tomishige, K. Kunimori, Catal. Commum. 4 (2003) 1-4.
[29] H. Tanaka, S. I. Ito, S. Kameoka, K. Tomishige, K. Kunimori, “Catalytic performance of K-promoted Rh/USY catalysts in preferential oxidation of CO in rich hydrogen,” Appl. Catal. A: Gen. 250 (2003) 255-263.
[30] S.I. , H. Tanaka, S. Kameoka, Y. Minemura, K. Tomishige, “Selective CO oxidation in H2-rich gas over K2CO3-promoted Rh/SiO2 catalysts: effects of preparation methodK. Kunimori,” Appl. Catal. A: Gen. 273 (2004) 295-302.
[31] Y. Ono, M. Shibata, T. Inui, “Non-linear change in oxidation state of Cu during Co oxidation on supported copper catalysts measured by the forced-oscillating reaction method,” J. Mol. Catal. A-Chem 153 (2000) 53-62.
[32] Y. Liu, Q. Fu, M. F. Stephanopoulos, “Preferential oxidation of CO in H2 over CuO-CeO2 catalysts ,” Catal. Today 93 (2004) 241-246.
[33] W. Liu, M. F. Stephanopoulos, “Total Oxidation of Carbon Monoxide and Methane over Transition Metal Fluorite Oxide Composite Catalysts : I. Catalyst Composition and Activity,” J. Catal. 153 (1995) 304-316.
[34] W. Liu, M. F. Stephanopoulos, “Total Oxidation of Carbon-Monoxide and Methane over Transition Metal Fluorite Oxide Composite Catalysts : II. Catalyst Characterization and Reaction-Ki,” J. Catal. 153 (1995) 317-332.
[35] W.P. Dow, T.J. Huang, “Effects of Oxygen Vacancy of Yttria-Stabilized Zirconia Support on Carbon Monoxide Oxidation over Copper Catalyst,” J. Catal. 147 (1994) 322-332.
[36] 林聖欽,「以觸媒在富氫下行一氧化碳選擇性氧化」,清大碩士論文(2000).
[37] C.Y. Shiau, M.W. Ma, C.S. Chuang, “CO oxidation over CeO2-promoted Cu/γ-Al2O3 catalyst: Effect of preparation method,” Appl. Catal. A: Gen. 301 (2006) 89-95.
[38] E. Aneggi, J. Liorca, M. Boaro, A. Trovarelli, “Surface-structure sensitivity of CO oxidation over polycrystalline ceria powders,” J. Catal. 234 (2005) 88-95.
[39] K. Zhou, X. Wang, X. Sun, Q. Peng, “Enhanced catalytic activity of ceria nanorods from well-defined reactive crystal planesY. Li,” Appl. Catal. A:Gen 229 (2005) 206-212.
[40] H.C. Yao, Y.F. Yu Yao, “Ceria in automotive exhaust catalysts : I. Oxygen storage,” J. Catal. 86 (1984) 254-265.
[41] S.J. Scgmieg, D.N. Belton, “Effect of hydrothermal aging on oxygen storage/release and activity in a commercial automotive cataly,” Appl. Catal. B: Environ. 6 (1995) 127-144.
[42] K.C. Taylor, Catal. Rev.-Sci. Eng. 35 (1993) 457.
[43] M.F. Luo, Y.J. Zhong, X.X. Yuan, X.M. Zheng, Appl. Catal, 162(1997)121.
[44] B. Skaman, D. Grandjean, R. E. Benfield, A. Hinz, A. Andersson , L.R. Wallenberg, “Carbon Monoxide Oxidation on Nanostructured CuOx/CeO2 Composite Particles Characterized by HREM, XPS, XAS, and High-Energy Diffraction,” J. Catal. 211 (2002) 119-133.
[45] A. Martinez-Arias, M. Fernandez-Garcia, O. Gaivez, J.M. Coronado, “Comparative Study on Redox Properties and Catalytic Behavior for CO Oxidation of CuO/CeO2 and CuO/ZrCeO4 Catalysts J.A. Anderson,” J. Catal,195 (2000) 207-216.
[46] M. Ozawa, C.K. Loong, “In situ X-ray and neutron powder diffraction studies of redox behavior in CeO2-containing oxide catalysts,” Catal. Today 50 (1999) 329-342.
[47] M. Daturi, E. Finocchio, C. Binet, J.C. Lavalley, F. Fally, V. Perrichon, J. Phys. Chem. B 103 (1999) 329
[48] R. Di Monte, G.R. Rao, J. Kašpar, S. Meriani, A. Trovarelli, M. Graziani, “Rh-Loaded CeO2-ZrO2 Solid-Solutions as Highly Efficient Oxygen Exchangers: Dependence of the Reduction Behavior and the Oxygen Storage Capacity on the Structural-Properties,” J. Catal. 151 (1995) 168-177.
[49] P. Fornasiero, E. Fonda, R.D. Monte, G. Vlaic, J. Ka par, M. Graziani, “Relationships between Structural/Textural Properties and Redox Behavior in Ce0.6Zr0.4O2 Mixed Oxides,” J. Catal. 187 (1999) 177-185.
[50] A. M. Arias, M.F.Garcia, J. Soria, J.C. Conesa, “Spectroscopic Study of a Cu/CeO2 Catalyst Subjected to Redox Treatments in Carbon Monoxide and Oxygen,” J. Catal. 182 (1999) 367-377.
[51] G. Vlaic, R. Di Monte, P. Fornasiero, J. Kašpar, M. Graziani, “Redox Property-Local Structure Relationships in the Rh-Loaded CeO2-ZrO2 Mixed Oxides,” J. Catal. 182 (1999) 378-389
[52] C. Descorme, Y. Madier, D. Duprez, “Infrared Study of Oxygen Adsorption and Activation on Cerium–Zirconium Mixed Oxides,” J. Catal. 196 (2000) 167-173.
[53] G. Balducci, P. Fornasiero, “An unusual promotion of the redox behaviour of CeO2-ZrO2 solid solutions upon sintering at high temperatures R. Di Monte, J. Kaspar, S. Meriani,” Catal. Lett. 33 (1995) 193.
[54] R. Lin, Y. J. Zhong, M.F. Luo, W. P. Liu, Indian J. Chem. 40A (2001) 36.
[55] R. Lin, M.F. Luo, Y.J. Yan, G.Y. Liu, W.P. Liu, “Comparative study of CuO/Ce0.7Sn 0.3O2, CuO/CeO2 and CuO/SnO2 catalysts for low-temperature CO oxidation,” Appl. Catal. A: Gen. 255 (2003) 331-336.
[56] H. Chen, A. Sayari, A. Adnot, F. Larachi, “Composition-activity effects of Mn–Ce–O composites on phenol catalytic wet oxidation,” Appl. Catal. B: Environ. 32 (2001) 195-204.
[57] G. Qi, R. T. Yang, “Performance and kinetics study for low-temperature SCR of NO with NH3 over MnOx–CeO2 catalyst,” J. Catal. 217 (2003) 434-441.
[58] B. Murugan, A.V., “Ramaswamy, Nature of Manganese Species in Ce1-xMnxO2- Solid Solutions Synthesized by the Solution Combustion Route,” Chem. Mater 17(2005)3983-3993
[59] 王榕蔓,「CuO/Ce1-xSnxO2-Al2O3觸媒富氫中CO的選擇性氧化反應研究」,國立中央大學,化學工程與材料工程研究所,碩士論文,民國96年。 |