Korean Chemical Engineering Research, Vol.52, No.5, 678-687, October, 2014
The Influence of a Second Metal on the Ni/SiC Catalyst for the Methanation of Syngas
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The catalytic performance of silicon carbide supported nickel catalysts modified with or without second metal (Co, Cu and Zn) for the methanation of CO has been investigated in a fixed-bed reactor using a feed consisting of 25% CO and 75% H2 without any diluent gas. It has been found that the introduction of Co species can clearly improve the catalytic activity of Ni/SiC catalyst, whereas the addition of Cu or Zn can result in a significant decrease in the catalytic activity. The characterizations by means of XRD, TEM, XPS, CO-TPD and H2-TPR indicate that the addition of
Co could decrease the particle size of active metal, increase active sites on the surface of methanation catalyst, improve the chemisorption of CO and enhance the reducibility of methanation catalysts. Additionally, the special interaction between Co species and Ni species is likely favorable for the dissociation of adsorbed CO on the surface of catalyst, and this may
also contribute to the high activity of 5Co-Ni/SiC catalyst for CO methanation reaction. For 5Cu-Ni/SiC catalyst and 5Zn-Ni/SiC catalyst, Cu and Zn species could cover partial nickel particles and decrease the chemisorption amount of CO. These could be responsible for the low methanation activity. In addition, a 150h stability test under 2 MPa and 300 ℃ showed that 5Co-Ni/SiC catalyst was very stable for CO methanation reaction.
- Kustov AL, Frey AM, Larsen KE, Johannessen T, Norskov JK, Christensen CH, Appl. Catal. A: Gen., 320, 98 (2007)
- Kopyscinski J, Schildhauer TJ, Biollaz SMA, Fuel, 89(8), 1763 (2010)
- Rostrup-Nielsen JR, Pedersen K, Sehested J, Appl. Catal. A: Gen., 330, 134 (2007)
- Vitasari CR, Jurascik M, Ptasinski KJ, Energy, 36(6), 3825 (2011)
- Liu ZH, Chu BZ, Zhai XL, Jin Y, Cheng Y, Fuel, 95(1), 599 (2012)
- van der Meijden CM, Veringa HJ, Rabou LPLM, Biomass Bioenerg., 34(3), 302 (2010)
- Grobl T, Walter H, Haider M, Appl. Energy, 97, 451 (2012)
- Wirth S, Markard J, Technological Forecasting and Social Change, 78, 635 (2011)
- Shen WJ, Okumura M, Matsumura Y, Haruta M, Appl. Catal. A: Gen., 213(2), 225 (2001)
- Takenaka S, Shimizu T, Otsuka K, Int. J. Hydrog. Energy, 29(10), 1065 (2004)
- Panagiotopoulou P, Kondarides DI, Verykios XE, Appl. Catal. A: Gen., 344(1-2), 45 (2008)
- Panagiotopoulou P, Kondarides DI, Verykios XE, Appl. Catal. B: Environ., 88(3-4), 470 (2009)
- Kowalczyk Z, Stolecki K, Rarog-Pilecka W, Miskiewicz E, Wilczkowska E, Karpiniski Z, Appl. Catal. A: Gen., 342(1-2), 35 (2008)
- Utaka T, Takeguchi T, Kikuchi R, Eguchi K, Appl. Catal. A: Gen., 246(1), 117 (2003)
- Tsai YT, Mo XH, Goodwin JG, J. Catal., 285(1), 242 (2012)
- Sabatier P, Senderens JB, Acad. Sci., 134, 514 (1902)
- Morl T, Masuda H, Imal H, J. Phys. Chem., 86, 2753 (1982)
- Fujita SI, Takezawa N, Chem. Eng. J., 68(1), 63 (1997)
- Mo XH, Tsai YT, Gao J, Mao DS, Goodwin JG, J. Catal., 285(1), 208 (2012)
- Znak L, Stolecki K, Zielinski J, Catal. Today, 101(2), 65 (2005)
- Hu X, Lu GX, Green Chem., 11, 724 (2009)
- Gao J, Mo XH, Chien ACY, Torres W, Goodwin JG, J. Catal., 262(1), 119 (2009)
- Wu RF, Zhang Y, Wang YZ, Gao CG, Zhao YX, J. Fuel Chem. Tech., 37, 578 (2009)
- Wang YZ, Wu RF, Zhao YX, Catal. Today, 158(3-4), 470 (2010)
- Kraselcuk R, Isli AI, Aksoylu AE, Onsan ZI, Appl. Catal. A: Gen., 192(2), 263 (2000)
- Kip BJ, Smessts PAT, Grondelle J, Van Prins R, Appl. Catal., 33, 181 (1987)
- Ishihara T, Eguchi K, Arai H, Appl. Catal., 30, 225 (1987)
- Wang JJ, Chernavskii PA, Khodakov AY, Wang Y, J. Catal., 286, 51 (2012)
- Zhao JJ, Zong ZM, Xie HS, Liu T, Li JJ, Wang TT, Wei XY, Mining Science and Technology (China), 20, 296 (2010)
- Boellaard E, van de Scheur FT, van der Kraan AM, Geus JW, Appl. Catal. A: Gen., 171(2), 333 (1998)
- Fujitani T, Nakamura I, Ueno S, Uchijima T, Nakamura J, J. Appl. Surf. Sci., 122, 583 (1997)
- Lin MG, Fang KG, Li DB, Sun YH, Catal. Commun., 9, 1869 (2008)
- Yu Y, Jin GQ, Wang YY, Guo XY, Fuel Process. Technol., 92(12), 2293 (2011)
- Jin GQ, Guo XY, Micropor. Mesopor. Mater., 60, 207 (2003)
- Ni YH, Wang F, Liu HJ, Liang YY, Yin G, Hong JM, Ma X, Xu Z, Inorg. Chem. Commun., 6, 1406 (2003)
- Zhang JG, Wang H, Dalai AK, J. Catal., 249(2), 300 (2007)
- Czekaj L, Loviat F, Raimondi F, Wambach J, Biollaz S, Wokaun A, Appl. Catal. A: Gen., 329, 68 (2007)
- Yu ZB, Qiao MH, Li HX, Deng JF, Appl. Catal. A: Gen., 163(1-2), 1 (1997)
- Petrov K, Will G, J. Mater. Sci. Lett., 6, 1153 (1987)
- Engbæk J, Lytken O, Nielsen JH, Chorkendorff I, Surf. Sci., 602, 733 (2008)
- Hayes RE, Thomas WJ, Hayes KE, Catalysis, 92, 312 (1985)
- Mo XH, Tsai YT, Gao J, Mao DS, Goodwin JG, J. Catal., 285(1), 208 (2012)
- Yu Y, Jin GQ, Wang YY, Guo XY, Catal. Commun., 31, 5 (2013)
- Xu JK, Zhou W, Li ZJ, Wang JH, Ma JX, Int. J. Hydrog. Energy, 34(16), 6646 (2009)
- Li L, Lu P, Yao Y, Ji WJ, Catal. Commun., 26, 72 (2012)
- Zhu JQ, Peng XX, Yao L, Shen J, Tong DM, Hu CW, Int. J. Hydrog. Energy, 36(12), 7094 (2011)
- Hernandez RP, Galicia GM, Anaya DM, Palacios J, Chavez CA, Alatorre JA, Int. J. Hydrogen Energy, 38, 4569 (2008)
- Lee JH, Lee EG, Joo OS, Jung KD, Appl. Catal. A: Gen., 289, 1 (2004)
- Boellaard E, van de Scheur FT, van der Kraan AM, Geus JW, Appl. Catal. A: Gen., 171(2), 333 (1998)
- Chen JL, Qiao YH, Li YD, Appl. Catal. A: Gen., 337(2), 148 (2008)