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Facile Synthesis of Mesoporous Silica for Separation of Coalbed Methane
Corresponding Author(s) : Zhenghe Liu
Asian Journal of Chemistry,
Vol. 26 No. 12 (2014): Vol 26 Issue 12
Abstract
Mesoporous silica as potential adsorbent for separation of coalbed methane was prepared by using one anionic surfactant containing poly(ethylene oxide) group as template in a facile method. Small angle XRD, TEM and N2 adsorption-desorption isotherms were carried out to confirm the final product. From the results of characterizations, the diameters of the spherical particles have a narrow range of 100-130 nm and the mesoporous sizes are in 2-4 nm. In addition, the average pore size is 2.98 nm, the BET surface area is 572 m2/g and the pore volume is 0.4150 cm3/g.
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- J.S. Beck, J.C. Vartuli, W.J. Roth, M.E. Leonowicz, C.T. Kresge, K.D. Schmitt, C.T.W. Chu, D.H. Olson and E.W. Sheppard, J. Am. Chem. Soc., 114, 10834 (1992); doi:10.1021/ja00053a020.
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- Y. Wan and D. Zhao, Chem. Rev., 107, 2821 (2007); doi:10.1021/cr068020s.
- D. Zhao, J. Feng, Q. Huo, N. Melosh, G.H. Fredrickson, B.F. Chmelka and G.D. Stucky, Science, 279, 548 (1998); doi:10.1126/science.279.5350.548.
- G.S. Armatas and M.G. Kanatzidis, Nature, 441, 1122 (2006); doi:10.1038/nature04833.
- D. Sun, A.E. Riley, A.J. Cadby, E.K. Richman, S.D. Korlann and S.H. Tolbert, Nature, 441, 1126 (2006); doi:10.1038/nature04891.
- V. Luca, J.N. Watson, M. Ruschena and R.B. Knott, Chem. Mater., 18, 1156 (2006); doi:10.1021/cm051255k.
- G. Chen, L. Jiang, L. Wang and J. Zhang, Micropor. Mesopor. Mater., 134, 189 (2010); doi:10.1016/j.micromeso.2010.05.025.
- M.J. Stébé, M. Emo, A. Forny-Le Follotec, L. Metlas-Komunjer, I. Pezron and J.L. Blin, Langmuir, 29, 1618 (2013); doi:10.1021/la304315v.
- L. Han, J. Ruan, Y. Li, O. Terasaki and S. Che, Chem. Mater., 19, 2860 (2007); doi:10.1021/cm0705845.
- K.S.W. Sing, D.H. Everett, R.A.W. Haul, L. Moscou, R.A. Pierotti, J. Rouquerol and T. Siemieniewska, Pure Appl. Chem., 57, 603 (1985); doi:10.1351/pac198557040603.
References
J.S. Beck, J.C. Vartuli, W.J. Roth, M.E. Leonowicz, C.T. Kresge, K.D. Schmitt, C.T.W. Chu, D.H. Olson and E.W. Sheppard, J. Am. Chem. Soc., 114, 10834 (1992); doi:10.1021/ja00053a020.
T.-L. Chew, A.L. Ahmad and S. Bhatia, Adv. Colloid Interface Sci., 153, 43 (2010); doi:10.1016/j.cis.2009.12.001.
J.H. Clark, D.J. Macquarrie and S.J. Tavener, Dalton Trans., 4297 (2006); doi:10.1039/b607831a.
I.I. Slowing, J.L. Vivero-Escoto, C.-W. Wu and V.S.-Y. Lin, Adv. Drug Deliv. Rev., 60, 1278 (2008); doi:10.1016/j.addr.2008.03.012.
J.L. Vivero-Escoto, I.I. Slowing, B.G. Trewyn and V.S.-Y. Lin, Small, 6, 1952 (2010); doi:10.1002/smll.200901789.
G. Garnweitner and M. Niederberger, J. Mater. Chem., 18, 1171 (2008); doi:10.1039/b713775c.
Z. Chen, T.L. Greaves, R.A. Caruso and C.J. Drummond, J. Mater. Chem., 22, 10069 (2012); doi:10.1039/c2jm30708a.
Y. Wan and D. Zhao, Chem. Rev., 107, 2821 (2007); doi:10.1021/cr068020s.
D. Zhao, J. Feng, Q. Huo, N. Melosh, G.H. Fredrickson, B.F. Chmelka and G.D. Stucky, Science, 279, 548 (1998); doi:10.1126/science.279.5350.548.
G.S. Armatas and M.G. Kanatzidis, Nature, 441, 1122 (2006); doi:10.1038/nature04833.
D. Sun, A.E. Riley, A.J. Cadby, E.K. Richman, S.D. Korlann and S.H. Tolbert, Nature, 441, 1126 (2006); doi:10.1038/nature04891.
V. Luca, J.N. Watson, M. Ruschena and R.B. Knott, Chem. Mater., 18, 1156 (2006); doi:10.1021/cm051255k.
G. Chen, L. Jiang, L. Wang and J. Zhang, Micropor. Mesopor. Mater., 134, 189 (2010); doi:10.1016/j.micromeso.2010.05.025.
M.J. Stébé, M. Emo, A. Forny-Le Follotec, L. Metlas-Komunjer, I. Pezron and J.L. Blin, Langmuir, 29, 1618 (2013); doi:10.1021/la304315v.
L. Han, J. Ruan, Y. Li, O. Terasaki and S. Che, Chem. Mater., 19, 2860 (2007); doi:10.1021/cm0705845.
K.S.W. Sing, D.H. Everett, R.A.W. Haul, L. Moscou, R.A. Pierotti, J. Rouquerol and T. Siemieniewska, Pure Appl. Chem., 57, 603 (1985); doi:10.1351/pac198557040603.