Microwave Assisted Co/SiO2 preparation for Fischer-Tropsch synthesis
Abstract
Cobalt catalyst has been widely used for Fischer-Tropsch (FT) Synthesis in Industry. The most common method to prepare cobalt catalyst is impregnations. Metal is deposited on porous support by contacting dry support with solution containing dissolved cobalt precursor. This step will follow by drying, calcination and reduction. The heating step used in this conventional method, however, may lead to the formation of metal silicate which is inactive site for catalysis. In this study, author explore the use of microwave to prepare catalyst compared to conventional drying method. Cobalt catalyst with SiO2 support was prepared and characterized. Particle size, surface area, and cobalt content were investigated. Crystallite size of 3-8 nm was formed which was reported to be the optimum size for cobalt catalyst in FT Synthesis. Scanning Electron Microscope (SEM) and Transmission Electron Microscopy (TEM) image revealed that microwave catalyst showed better uniformity and cobalt dispersion on silica support. Thermo-Gravimetric Analysis (TGA) study also indicated that this catalyst has good stability at Low Temperature Fischer-Tropsch Synthesis. The catalysts were then applied plasma assisted FT process over a range of power plasma (20-60W) to investigate the effect on the conversion and selectivity. The results showed that microwave catalyst exhibit lower CO conversion at 42.06% compared to conventional method at 68.32%. However, microwave catalyst is more favourable for long chain hydrocarbon selectivity.
Keywords
References
Van der Laan, G.P. and Beenackers, A. 1999 Kinetics and selectivity of the fischer-tropsch synthesis: a literature review. Catal Rev. 41(3-4): 255-318.
Lillebø, A.H.; Holmen, A.; Enger, B.C. and Blekkan, E.A. 2013. Fischer–Tropsch conversion of biomass-derived synthesis gas to liquid fuels. Wires Energy Environ. 2(5) 507-524.
Khodakov, A.Y.; Chu, W. and Fongarland, P. 2007. Advances in the development of novel cobalt Fischer−Tropsch catalysts for synthesis of long-chain hydrocarbons and clean fuels. Chem. Rev. 107(5)1692-1744.
Girardon, J.-S.; Lermontov, A.S.; Gengembre, L.; Chernavskii, P.A.; Griboval-Constant, A. and Khodakov, A.Y. 2005. Effect of cobalt precursor and pretreatment conditions on the structure and catalytic performance of cobalt silica-supported Fischer–Tropsch catalysts. J. Catal. 2005. 230(2) 339-352.
Zhang, Q.; Deng, W. and Wang, Y. 2013. Recent advances in understanding the key catalyst factors for Fischer-Tropsch synthesis. J. Energy Chem. 22(1): 27-38.
Song, D. and Li, J. 2006. Effect of catalyst pore size on the catalytic performance of silica supported cobalt Fischer–Tropsch catalysts. J. Mol. Catal. A-Chem. 247(1–2): 206-212.
Kababji, A.H.; Wolan, J.T.; and B. Joseph. 2009. Silica-supported cobalt catalysts for Fischer-Tropsch synthesis: Effects of calcination temperature and support structure. in 47th AIAA Aerospace Sciences Meeting including the New Horizons Forum and Aerospace Exposition. 2009.
Xu, J.; Yang, Y. and Li, Y.-W. 2013. Fischer–Tropsch synthesis process development: steps from fundamentals to industrial practices. Curr. Opin. Chem. Eng. 2(3) 354-362.
Schulz, H., 2013. Principles of Fischer–Tropsch synthesis—Constraints on essential reactions ruling FT-selectivity. Catal. Today 214(0) 140-151.
Nakhaei Pour, A. and M.R. Housaindokht. 2014. Studies on product distribution of nanostructured iron catalyst in Fischer–Tropsch synthesis: Effect of catalyst particle size. J. Ind. Eng. Chem. 20(2): 591-596.
Torres Galvis, H.M. and de Jong, K.P. 2013. Catalysts for production of lower olefins from synthesis gas: a review. ACS Catal. 3(9): 2130-2149.
Rodrigues, J.J.; Fernandes, F.A.N.; and. Rodrigues, M.G.F. 2013. Study of Co/SBA-15 catalysts prepared by microwave and conventional heating methods and application in Fischer–Tropsch synthesis. Appl. Catal. A- Gen. 468(0): 32-37.
Reubroycharoen, P.; Vitidsant, T.; Liu, Y.; Yang, G.; and Tsubaki, N. 2007. Highly active Fischer–Tropsch synthesis Co/SiO2 catalysts prepared from microwave irradiation. Catal. Commun. 8(3): 375-378.
Akay, G. 2012. Ammonia Production By Integrated Intensified Processes. 2012, International Patent Publication, PCT/20101/051620
Clausen, L. and I. Fabricius. 2000. BET Measurements: Outgassing of Minerals. J. Colloid Interf. Sci. 227(1): 7-15.
Speakman, S.A. Basic of XRD. 2012; Available from: http://prism.mit.edu/xray.
Tu, X. and Whitehead, J.C. 2014. Plasma dry reforming of methane in an atmospheric pressure AC gliding arc discharge: Co-generation of syngas and carbon nanomaterials. Int. J Hydrogen Energy 39(18) 9658-9669.
DOI: 10.24815/jn.v20i2.16889
Refbacks
- There are currently no refbacks.



Universitas Syiah Kuala (recognizedly abbreviated as