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      참고문헌 (Reference)

      1 Moon, D.-J., "“Ni-based Catalyst for Tri-reforming of Methane and Its Catalysis Application for the Production of Syngas,” Korea Patent 10-2007-0043304"

      2 Choi, J.-E., "“Additivesfor Suppressing Coke Formation in the Hydrocarbon Reforming,” Korea Patent (applying) 10-2008-0044767"

      3 "http://www.gasnews.com/news/main.php."

      4 Vishwanathan, V., "Vapour Phase Dehydration of Crude Methanol to Dimethyl Ether over Na-modified H-ZSM-5 Catalysts" 276 : 251-, 2004

      5 Song, C., "Tri-reforming of Methane: A Novel Concept for Catalytic Production of Industrially Useful Synthesis Gas with Desired H2/CO Ratios" 98 : 463-, 2004

      6 Lee, S.-H., "Tri-reforming of CH4 using CO2 for Production of Synthesis Gas to Dimethyl Ether" 87 : 133-, 2003

      7 Li, Y., "Thermodynamic Analysis of Autothermal Steam and CO2 Reforming of Methane" 33 : 2507-, 2008

      8 Marina, O. A., "Thermal, Electrical, and Electrocatalytical Properties of Lanthanum-doped Strontium Titanate" 149 : 21-, 2002

      9 Newsome, D. S., "The Water-Gas Shift Reaction" 21 : 275-, 1980

      10 ArcoumaNis, C., "The Potential of Dimethyl Ether (DME) as an Alternative Fuel for Compression-ignition Engines: A Review" 87 : 1014-, 2008

      1 Moon, D.-J., "“Ni-based Catalyst for Tri-reforming of Methane and Its Catalysis Application for the Production of Syngas,” Korea Patent 10-2007-0043304"

      2 Choi, J.-E., "“Additivesfor Suppressing Coke Formation in the Hydrocarbon Reforming,” Korea Patent (applying) 10-2008-0044767"

      3 "http://www.gasnews.com/news/main.php."

      4 Vishwanathan, V., "Vapour Phase Dehydration of Crude Methanol to Dimethyl Ether over Na-modified H-ZSM-5 Catalysts" 276 : 251-, 2004

      5 Song, C., "Tri-reforming of Methane: A Novel Concept for Catalytic Production of Industrially Useful Synthesis Gas with Desired H2/CO Ratios" 98 : 463-, 2004

      6 Lee, S.-H., "Tri-reforming of CH4 using CO2 for Production of Synthesis Gas to Dimethyl Ether" 87 : 133-, 2003

      7 Li, Y., "Thermodynamic Analysis of Autothermal Steam and CO2 Reforming of Methane" 33 : 2507-, 2008

      8 Marina, O. A., "Thermal, Electrical, and Electrocatalytical Properties of Lanthanum-doped Strontium Titanate" 149 : 21-, 2002

      9 Newsome, D. S., "The Water-Gas Shift Reaction" 21 : 275-, 1980

      10 ArcoumaNis, C., "The Potential of Dimethyl Ether (DME) as an Alternative Fuel for Compression-ignition Engines: A Review" 87 : 1014-, 2008

      11 Barbosa, F, "The Deactivation Modes of Cu/ZnO/Al2O3 and HZSM-5 Physical Mixture in the One-step DME Synthesis" 126 : 173-, 2008

      12 Moradi, G., "Systematic Investigation of the Effects of Operating Conditions on the Liquid-Phase Dimethyl Ether (LPDME) Process" 22 : 3587-, 2008

      13 Laosiripojana, N., "Synthesis Gas Production from Dry Reforming of Methane over CeO2 Doped Ni/Al2O3: Influence of the Doping Ceria on the Resistance toward Carbon Formation" 112 : 13-, 2005

      14 Horiuchi, T., "Suppression of Carbon Deposition in the CO2 Reforming of CH4 by Adding Basic Metal Oxides to a Ni/Al2O3 Catalyst" 144 : 111-, 1996

      15 Chen, X. J., "Suppression of Carbon Deposition at CeO2-modified Ni/YSZ Anodes in Weakly Humidified CH4 at 850" 8 : A79 -, 2005

      16 Qin, D., "Study of Mixed Steam and CO2 Reforming of CH4 to Syngas on MgO-supported Metals" Elsevier Science Bv 51-560, 1994

      17 Wang, J. B., "Study of Carbon Dioxide Reforming of Methane over Ni/Yttria-doped Ceria and Effect of Thermal Treatments of Support on the Activity Behaviors" 246 : 197-, 2003

      18 Xiancai, L., "Studies on Coke Formation and Coke Species of Nickel-based Catalysts in CO2 Reforming of CH4" 118 : 59-, 2007

      19 Hayakawa, H., "Studies on Cata lytic Performance of Precipitated Iron/Silica Catalysts for Fischer-tropsch Synthesis" 328 : 117-, 2007

      20 Lima, S. M., "Structural Features of La1-xCexNiO3 Mixed Oxides and Performance for the Dry Reforming of Methane" 311 : 94-, 2006

      21 Rivas, M. E., "Structural Features and Performance of LaNi1-xRhxO3 System for the Dry Reforming of Methane" 344 : 10-, 2008

      22 Moon, D.-J., "Solid Oxide Fuel Cell(SOFC) for Coproducing Syngas and Electricity by the Internal Reforming of Carbon Dioxide by Hydrocarbons and Electrochemical Membrane Reactor System for Application,” Korea Patent 10-2005-0039465"

      23 Wang, T. F., "Slurry Reactors for Gasto-liquid Processes: A Review" 46 : 5824-, 2007

      24 Osaki, T., "Role of Potassium in Carbon-free CO2 Reforming of Methane on K-Promoted Ni/Al2O3 Catalysts" 204 : 89-, 2001

      25 Spivey, J. J., "Review: Dehydration Catalysts for the Methanol/Dimethyl Ether Reaction" 110 : 123-, 1991

      26 Wang, L., "Research on the Acidity of the Double-function Catalyst for DME Synthesis from Syngas" 106 : 61-, 2006

      27 Meusinger, J., "Reforming of Natural Gas in Solid Oxide Fuel Cell Systems" 71 : 315-, 1998

      28 Moon, D.-J., "Reduction Technology of Carbon Dioxide by Electrocatalytic reaction" 2003

      29 Gross, M. D., "Recent Progress in SOFC Anodes for Direct Utilization of Hydrocarbons" 17 : 3071-, 2007

      30 Bukur, D. B., "Promoter Effects on Precipitated Iron Catalysts for Fischer-tropsch Synthesis" 29 : 194-, 1990

      31 Rivas, M. E., "Preparation and Characterization of Nickel-based Mixed-oxides and Their Performance for Catalytic Methane Decomposition" Elsevier Science Bv 367-373, 2008

      32 Jin, Y., "Phase Transformations in iron Fischertropsch Catalysts During Temperature-programmed Reduction" 196 : 8-, 2000

      33 Goldwasser, M. R., "Perovskites as Catalysts Precursors: CO2 Reforming of CH4 on Ln1-xCaxRu0.8Ni0.2O3 (Ln=La, Sm, Nd)" 255 : 45-, 2003

      34 Fischer, K., "Performance of Gasoline Fuel Cell Cars - A Simulation Study" 889-, 2005

      35 Janardhanan, V. M., "Performance Analysis of a SOFC under Direct Internal Reforming Conditions" 172 : 296-, 2007

      36 Gorte, R. J., "Novel SOFC Anodes for the Direct Electrochemical Oxidation of Hydrocarbon" 106 : 10-, 2002

      37 Chen, Y. G., "Noble Metal Promoted Ni0.03Mg0.97O Solid Solution Catalysts for the Reforming of CH4 with CO2" 39 : 91-, 1996

      38 Kang, J. S., "Nickel-based Tri-reforming Catalyst for the Production of Synthesis Gas" 332 : 153-, 2007

      39 Shiratori, Y., "NiO-SCSZ and Ni0.9Mg0.1O-SCSZbased Anodes under Internal Dry Reforming of Simulated Biogas Mixtures" 180 : 738-, 2008

      40 Crisafulli, C., "Ni-Ru Bimetallic Catalysts for the CO2 Reforming of Methane" 225 : 1-, 2002

      41 Klein, J. M., "Modeling of a SOFC Fuelled by Methane: From Direct Internal Reforming to Gradual Internal Reforming" 62 : 1636-, 2007

      42 Van Herle, J., "Modeling and Experimental Validation of Solid Oxide Fuel Cell Materials and Stacks" Elsevier Sci Ltd 2627-2632, 2005

      43 Kung, H. H., "Methanol Synthesis" 22 : 235-, 1980

      44 Verykios, X. E., "Mechanistic Aspects of the Reaction of CO2 Reforming of Methane over Rh/Al2O3 Catalyst" 255 : 101-, 2003

      45 Good, D. A., "Lifetimes and Global Warming Potentials for Dimethyl Ether and for Fluorinated Ethers: CH3OCF3 (E143a), CHF2OCHF2 (E134), CHF2OCF3 (E125)" 103 :

      46 De Lima, S. M, "La1-xCaxNiO3 Perovskite Oxides: Characterization and Catalytic Reactivity in Dry Reforming of Methane" 124 : 195-, 2008

      47 Guo, J., "La-based Perovskite Precursors Preparation and Its Catalytic Activity for CO2 Reforming of CH4" 57 : 4450-, 2003

      48 Tsipouriari, V. A., "Kinetic Study of the Catalytic Reforming of Methane with Carbon Dioxide to Synthesis Gas over Ni/La2O3 Catalyst" 64 : 83-, 2001

      49 Fiato, R. A., "Iron Catalyzed CO2 Hydrogenation to Liquid Hydrocarbons" 339-344, 1998

      50 Rostrup-Nielsen, J. R., "Internal Steam Reforming in Fuel cells and Alkali Poisoning" 126 : 381-, 1995

      51 Vollmar, H. E., "Innovative Concepts for the Coproduction of Electricity and Syngas with Solid Oxide Fuel Cells" 86 : 90-, 2000

      52 Yoo, K. S., "Influence of Solid Acid Catalyst on DME Production Directly from Synthesis Gas over the Admixed Catalyst of Cu/ZnO/Al2O3 and Various SAPO Catalysts" 330 : 57-, 2007

      53 Borowiecki, T., "Influence of Molybdenum and Tungsten Additives on the Properties of Nickel Steam Reforming Catalysts" 25 : 309-, 1994

      54 Jung, S., "Influence of Composition and Cu Impregnation Method on the Performance of Cu/CeO2/YSZ SOFC Anodes" 154 : 42-, 2006

      55 Luan, Y, "In-situ Regeneration Mechanisms of Hybrid Catalysts in the One-step Synthesis of Dimethyl Ether from Syngas" 115 : 23-, 2007

      56 StaNiforth, J., "Implications for Using Biogas as a Fuel Source for Solid Oxide Fuel Cells: Internal Dry Reforming in a Small Tubular Solid Oxide Fuel Cell" 81 : 19-, 2002

      57 Choi, P. H., "Hydrogenation of Carbon Dioxide over Alumina Supported Fe-K Catalysts" 40 : 115-, 1996

      58 Kendall, S. C. s. K., "High temperature Solid Oxide Fuel Cells - Fundamentals, Design and Application" Elsevier Ltd 89-91, 2003

      59 Kendall, S. C. s. K., "High temperature Solid Oxide Fuel Cells - Fundamentals, Design and Application" Elsevier Ltd 149-152, 2003

      60 Kendall, S. C. s. K., "High Temperature Solid Oxide Fuel Cells - Fundamentals, Design and Application" Elsevier Ltd 1-3, 2003

      61 Wang, W., "GDC-impregnated Ni Anodes for Direct Utilization of Methane in Solid Oxide Fuel Cells" 159 : 68-, 2006

      62 Halmann, M, "Fuel Saving, Carbon Dioxide Emission Avoidance, and Syngas Production by Tri-Reforming of Flue Gases from Coal- and Gas-fired Power Stations, and by the Carbothermic Reduction of Iron Oxide" 31 : 3171-, 2006

      63 Dicks, J. L. A., "Fuel Cell Systems Explains" John Wiley & Sons Ltd 164-, 2002

      64 Davis, B. H., "Fischer-tropsch Synthesis: Relationship Between Iron Catalyst Composition and Process Variables" 84 : 83-, 2003

      65 Luo, M., "Fischer-tropsch Synthesis: Group Alkali-earth Metal Promoted Catalysts" 246 : 171-, 2003

      66 Dictor, R. A, "Fischer-tropsch Synthesis over Reduced and Unreduced Iron Oxide Catalysts" 97 (97): 121-, 1986

      67 Sai Prasad, P, "Fischer-tropsch Synthesis by Carbon Dioxide Hydrogenation on Fe-based Catalysts" 12 : 170-, 2008

      68 Van Steen, E., "Fischer-tropsch Catalysts for the Biomass-to Liquid Process" 31 : 655-, 2008

      69 Snoeck, J. W., "Filamentous Carbon Formation and Gasification: Thermodynamics, Driving Force, Nucleation, and Steady-state Growth" 169 : 240-, 1997

      70 Shiratori, Y., "Feasibility of Directbiogas SOFC" 33 : 6316-, 2008

      71 Douvartzides, S., "Ethanol and Methane Fueled Solid Oxide Fuel Cells: A Comparative Study" 7 : 232-, 2001

      72 Zhi, M., "Electrochemical and Microstructural Analysis of Nickel-Yttria-Stabilized Zirconia Electrode Operated in Phosphorus-containing Syngas" 183 : 485-, 2008

      73 Moon, D. J., "Electrocatalytic Reforming of Carbon Dioxide by Methane in SOFC System" 87 : 255-, 2003

      74 Raoof, F., "Effects of Temperature and Feed Composition on Catalytic Dehydration of Methanol to Dimethyl Ether over γ-Alumina" 87 : 2967-, 2008

      75 Zhang, J., "Effects of Metal Content on Activity and Stability of Ni-Co Bimetallic Catalysts for CO2 Reforming of CH4" 339 : 121-, 2008

      76 Trembly, J. P., "Effects of Coal Syngas and H2S on the Performance of Solid Oxide Fuel Cells: Single-cell Tests" 158 : 263-, 2006

      77 Luan, Y., "Effects and Control of Steam in the Systems of Methanol and DME Synthesis from Syngas over Cu-based Catalysts" 125 : 271-, 2008

      78 Liu, Y., "Effect of Co-feeding Carbon Dioxide on Fischer-tropsch Synthesis over an Iron-Manganese Catalyst in a Spinning Basket Reactor" 89 : 234-, 2008

      79 Zhang, S., "Effect of Calcination Temperature on Structure and Performance of Ni/TiO2-SiO2 Catalyst for CO2 Reforming of Methane" 17 : 179-, 2008

      80 Kim, S.-M, "Effect of CO2 in the Feed Stream on the Deactivation of Co/γ-Al2O3 Fischer- tropsch Catalyst" 9 : 2269-, 2008

      81 Valderrama, G., "Dry Reforming of CH4 over Solid Solutions of LaNi1-xCoxO3" 133 : 142-, 2008

      82 Huang, Y.-H., "Double Perovskites as Anode Materials for Solid-Oxide Fuel cells" 312 : 254-, 2006

      83 Shanwen Tao, J. T. S. I., "Discovery and Characterization of Novel Oxide Anodes for Solid Oxide Fuel Cells" 4 : 83-, 2004

      84 Shikada, T., "Direct Synthesis of Dimethyl Ether Form Synthesis Gas" Elsevier Science Publ B V 515-520, 1998

      85 Sun, K., "Direct Synthesis of DME over Bifunctional Catalyst: Surface Properties and Catalytic Performance" 252 : 243-, 2003

      86 Park, S., "Direct Oxidation of Hydrocarbons in a Solid-Oxide Fuel Cell" 404 : 265-, 2000

      87 Ogawa, T, "Direct Dimethyl Ether (DME) Synthesis from Natural Gas" Elsevier Science Bv 379-384, 2004

      88 Semelsberger, T. A., "Dimethyl Ether (DME) as an Alternative Fuel" 156 : 497-, 2006

      89 Tomishige, K., "Development of Ultra-stable Ni Satalysts for CO2 Reforming of Methane" Elsevier Science Bv 35-39, 1998

      90 Xu, A., "Development and Integration of New Processes Consuming Carbon Dioxide in Multi-Plant Chemical Production Complexes" 7 : 97-, 2005

      91 Assabumrungrat, S., "Determination of the Boundary of Carbon Formation for Dry Reforming of Methane in a Solid Oxide Fuel Cell" 159 : 1274-, 2006

      92 Lercher, J. A., "Design of Stable Catalysts for Methane-carbon Dioxide Reforming" 463-472, 1996

      93 Guisnet, M., "Deactivation by Coking of Zeolite Catalysts. Prevention of Deactivation. Optimal Conditions for Regeneration" 36 : 477-, 1997

      94 Hwang, J. S., "Deactivation and Regeneration of Fe-K/alumina Catalyst in CO2 Hydrogenation" 208 : 217-, 2001

      95 Kim, J.-H., "DME Synthesis from Synthesis Gas on the Admixed Catalysts of Cu/ZnO/Al2O3 and ZSM-5" 264 : 37-, 2004

      96 Qi, G.-X., "DME Synthesis from Carbon Dioxide and Hydrogen over Cu-Mo/HZSM-5" 72 : 121-, 2001

      97 Zhang, X., "Conversion of Methane to Syngas in a Solid Oxide Fuel Cell with Ni-SDC Anode and LSGM Electrolyte" 81 : 989-, 2002

      98 Dong Ju Moon, "Cogeneration of a Synthesis Gas and Electricity Through Internal Reforming of Methane by Carbon Dioxide in a Solid Oxide Fuel Cell System" 한국공업화학회 12 (12): 149-155, 2006

      99 Ryu, J.-W., "Cogeneration of Both Electricity and Syangas in SOFC System" 12 (12): 67-70, 2003

      100 Goula, G., "Catalytic and ElectroCatalytic Behavior of Ni-based Cermet Anodes under Internal Dry Reforming of CH4+CO2 Mixtures in SOFCs" 177 : 2119-, 2006

      101 Laosiripojana, N., "Catalytic Steam Reforming of Methane, Methanol, and Ethanol over Ni/YSZ: The Possible Use of These Fuels in Internal Reforming SOFC" 163 : 943-, 2007

      102 Laosiripojana, N., "Catalytic Dry Reforming of Methane over High Surface Area Ceria" 60 : 107-, 2005

      103 Yaripour, F., "Catalytic Dehydration of Methanol to Dimethyl Ether (DME) over Solid-acid Catalysts" 6 : 147-, 2005

      104 Wisniewski, M., "Catalytic CO2 Reforming of Methane over Ir/Ce0.9Gd0.1O2-x" 6 : 596-, 2005

      105 Clarke, S. H., "Catalytic Aspects of the Steam Reforming of Hydrocarbons in Internal Reforming Fuel Cells" 38 : 411-, 1997

      106 Trimm, D. L., "Catalysts for the Control of Coking During Steam Reforming" Elsevier Science Bv 3-10, 1999

      107 Zhang, Z. L., "Carbon-dioxide Reforming of Methane to Synthesis Gas over Supported Ni Catalysts" Elsevier Science Bv 589-595, 1994

      108 Finnerty, C. M., "Carbon Formation on and Deactivation of Nickel-based/ Zirconia Anodes in Solid Oxide Fuel Cells running on Methane" 46 : 137-, 1998

      109 Peez-Alonso, F. J., "Carbon Dioxide Hydrogenation over Fe-Ce Catalysts" 9 : 1945-, 2008

      110 Koh, J.-H., "Carbon Deposition and Cell Performance of Ni-YSZ Anode Supported SOFC with Methane Fuel" 149 : 157-, 2002

      111 Tang, S., "CO2 Reforming of Methane to Synthesis Gas over Sol-gel-made Ni/ γ-Al2O3 Catalysts from OrganoMetallic Precursors" 194 : 424-, 2000

      112 Rostrupnielsen, J. R., "CO2 Reforming of Methane over Transition Metals" 144 : 38-, 1993

      113 Crisafulli, C., "CO2 Reforming of Methane over Ni-Ru and Ni-Pd Bimetallic Catalysts" 59 : 21-, 1999

      114 Gallego, G. S., "CO2 Reforming of CH4 over La-Ni Based Perovskite Precursors" 311 : 164-, 2006

      115 Bradford, M. C. J., "CO2 Reforming of CH4" 41 : 1-, 1999

      116 Hu, Y. H., "Binary MgO-based Solid Solution Catalysts for Methane Conversion to Syngas" 44 : 423-, 2002

      117 Ge, Q., "Bifunctional Catalysts for Conversion of Synthesis Gas to Dimethyl Ether" 167 : 23-, 1998

      118 Gross, M. D., "An Examination of SOFC Anode Functional Layers Based on Ceria in YSZ" 154 : B694-, 2007

      119 Sault, A. G., "An Auger Electron Spectroscopy Study of the Activation of Iron Fischer-tropsch Catalysts: Ii. Carbon Monoxide Activation" 140 : 136-, 1993

      120 Arena, F., "Alkali Promotion of Ni/MgO Catalysts" 187 : 127-, 1999

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