Synthesis and Characterization of Bimetallic Fe/Co Nanocatalyst on CNTs for Fischer-Tropsch Reaction

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Cobalt and iron are common catalysts used in the Fischer-Tropsch (FT) reaction. This paper presents the synthesis and characterization of monometallic and bimetallic cobalt and iron nanoparticles supported on carbon nanotubes (CNTs). The CNTs-supported nanocatalysts were synthesized by a wet impregnation method at various ratios of Fe:Co. The physicochemical properties of the samples were analyzed by H2-temperature programmed reduction (TPR), CO and H2-chemisorption analyses, transmission electron microscopy (TEM) and X-ray diffraction (XRD) analysis. The effects of incorporation of Fe into Co on the physicochemical properties of Co/CNTs in terms of degree of reduction, CO and H2 chemisorptions and morphologies were investigated. TEM showed that metal nanoparticles were well dispersed on the external surface and inside the CNTs. For monometallic Co/CNTs and Fe/CNTs, the average metal particle size was 5±1 nm and 6±1 nm, respectively. For the bimetallic 70Co30Fe/CNTs nanocatalysts, the average particle size was found to be 4±1 nm. Metal particles attached to the outer walls were bigger than the ones inside the CNTs. H2-TPR analysis of Co/CNTs indicated two temperature regions at 330°C (low temperature) and 491°C (high temperature). The incorporation of iron into cobalt nanocatalysts of up to 30 % of the total metal loading enhanced the catalyst’s H2 and CO chemisorptions capacities and reducibility.

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9-14

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January 2012

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© 2011 Trans Tech Publications Ltd. All Rights Reserved

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[1] M.E. Dry, Fischer–Tropsch reactions and the environment: Appl. Catal. A. 189 (1999), 185-190.

Google Scholar

[2] R.C. Brady III and R. Pettit, Reactions of diazomethane on transition-metal surfaces and their relationship to the mechanism of the Fischer-Tropsch reaction: J. Am. Chem. Soc. 102 (1980), 6181–6182.

DOI: 10.1021/ja00539a053

Google Scholar

[3] A. Tavasoli, Y. Mortazavi, A. Khodadadi and K. Sadagiani, Effects of different loadings of Ru and Re on physico-chemical properties and performance of 15% Co/Al2O3 FTS catalysts: Iran.J. Chem. Chem. Eng. 35 (2005), 9-15.

Google Scholar

[4] E. Iglesia, Design, synthesis, and use of cobalt-based Fischer-Tropsch synthesis catalysts: Appl. Catal. A. 161 (1997), 59-78.

DOI: 10.1016/s0926-860x(97)00186-5

Google Scholar

[5] A.Y. Khodakov, W. Chu and P. Fongarland, Advances in the development of novel cobalt Fischer-Tropsch catalysts for synthesis of long-chain hydrocarbons and clean fuels: Chem. Rev. 5 (2007), 1692-1744.

DOI: 10.1021/cr050972v

Google Scholar

[6] P.J. Berge, V.J.V.D. Loosdrecht, S. Barradas and A.M.V.D. Kraan, Oxidation of cobalt based Fischer–Tropsch catalysts as a deactivation mechanism: Catal. Today. 58 (2000), 321–334.

DOI: 10.1016/s0920-5861(00)00265-0

Google Scholar

[7] G. Jacobs, T.K. Das, Y. Zhang, J. Li, G. Racoillet and B.H. Davis, Fischer–Tropsch synthesis: support, loading, and promoter effects on the reducibility of cobalt catalysts: Appl. Catal. A. 233 (2002), 263–281.

DOI: 10.1016/s0926-860x(02)00195-3

Google Scholar

[8] R.M.M. Abbaslou, A. Tavasoli, A.K. Dalai, Effect of pre-treatment on physico-chemical properties and stability of carbon nanotubes supported iron Fischer–Tropsch catalysts: Appl. Catal. A. 355 (2009), 33–41.

DOI: 10.1016/j.apcata.2008.11.023

Google Scholar

[9] M. Trepanier, A. Tavasoli, A.K. Dalai and N. Abatzoglou, Fischer–Tropsch synthesis over carbon nanotubes supported cobalt catalysts in a fixed bed reactor. Influence of acid treatment: Fuel Proc. Tech. 90 (2009), 367-374.

DOI: 10.1016/j.fuproc.2008.10.012

Google Scholar

[10] R.C. Reuel and C.H. Bartholomew, Effects of support and dispersion on the CO hydrogenation activity/selectivity properties of cobalt: J. Catal. 85 (1984), 78-88.

DOI: 10.1016/0021-9517(84)90111-8

Google Scholar

[11] L. Bezemer, A.V. Laak, A.J.V. Dillen and K.P. Jong, Cobalt supported on carbon nanofibers-a promising novel Fischer–Tropsch catalyst, Stud. Surf. Sci. Catal. 147 (2004), 259–264.

DOI: 10.1016/s0167-2991(04)80061-2

Google Scholar

[12] A. Tavasoli, M. Trepanier, R. M. M. Abbaslou, A. K. Dalai and N. Abatzoglou, Fischer–Tropsch synthesis on mono- and bimetallic Co and Fe catalysts supported on carbon nanotubes: Fuel Proc. Tech. 90 (2009), 1486-1494.

DOI: 10.1016/j.fuproc.2009.07.007

Google Scholar