Copyright (c) 2014 Manop Sriuttha1, Rungroj Chanajaree2, Wimonrat Tongpoothorn3, Kitiyaporn Wittayanarakul1
This work is licensed under a Creative Commons Attribution 4.0 International License.
A Combined Experimental/Computational Study on Adsorption of Fe2+ by Cigarette Filter Added with Chitosan
Corresponding Author(s) : Manop Sriuttha1
Asian Journal of Chemistry,
Vol 26 No Supplementary Issue
Abstract
The ability of cigarette filter added with chitosan (CFAC) for the Fe2+ removal from aqueous solution has been investigated by adsorption method. It is found that the Freundlich isotherm can well describe the Fe2+ adsorption capacity in CFAC. The experimental data suggests the pseudo-second-order equation represented as the adsorption model. The Fe2+ ions adsorb spontaneously on the CFAC and the possible process is more favorable at higher temperatures. The obtained DH° and DS° values indicate that the adsorption reaction is the endothermic and some structural changes appear at the adsorbent and randomly occur at the solid/liquid interface, respectively. In addition, the computational approach has been performed to show the binding interaction between the Fe2+ and the chitosan. The result suggests that nitrogen atoms of chitosan are the preferential adsorption site for Fe2+. This work is worth to see the ability of the new adsorbent for further development of metal removal from the aqueous solution that is the application for waste water treatment.
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- A. Kumar and O. Sahu, World J. Chem. Edu., 1, 17 (2013).
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- W. Wan Ngah, N. Ariff and M. Hanafiah, Water Air Soil Pollut., 206, 225 (2010).
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References
A. Kumar and O. Sahu, World J. Chem. Edu., 1, 17 (2013).
V.K. Gupta and S. Sharma, Environ. Sci. Technol., 36, 3612 (2002).
W.S.W. Ngah, S. AbGhani and A. Kamari, Bioresour. Technol., 96, 443 (2005).
A. Garcia-Mendieta, M. Olguin and M. Solache-Rios, Desalination, 284, 167 (2012).
M. Moghadam, N. Nasirizadeh, Z. Dashti and E. Babanezhad, Int. J. Ind. Chem., 4, 19 (2013).
R. Razmovski and M. Sciban, Afr. J. Biotechnol., 7, 1693 (2008).
K.K.P. Porpino, M.C.S. Barreto, K.B. Cambuim, J.R. Carvalho Filho, I.A.S. Toscano and M.A. Lima, Quim. Nova, 34, 928 (2011).
M.N.V.R. Kumar, R.A.A. Muzzarelli, C. Muzzarelli, H. Sashiwa and A.J. Domb, Chem. Rev., 104, 6017 (2004).
W. Wan Ngah, N. Ariff and M. Hanafiah, Water Air Soil Pollut., 206, 225 (2010).
E. Guibal, Separ. Purif. Tech., 38, 43 (2004).
W. Zhou, Y. Xu, D. Wang and S. Zhou, J. Ocean Univ. China, 12, 509 (2013).
L.V. Mulaudzi, J. F.van Staden and R.I. Stefan, Anal. Chim. Acta, 467, 35 (2002).
S. Bhattarai, R. Kc, S. Kim, M. Sharma, M. Khil, P. Hwang, G. Chung and H. Kim, J. Nanobiotechnology, 6, 1 (2008).
M.A. Chordiya, H.H. Gangurde, K. Senthilkumaran and L.P. Kothari, J. Pharm. Investig., 1, 105 (2011).
A. Elmagirbi, H. Sulistyarti and A. Atikah, J. Pure App. Chem. Res., 1, 11 (2012).
W. Smith, T.R. Forester and I.T. Todorov, THE DL_POLY_4.05 USER MANUAL (2013).
S. Nose, Mol. Phys., 52, 255 (1984).
P. Mark and L. Nilsson, J. Phys. Chem. A, 105, 9954 (2001).
S.L. Mayo, B.D. Olafson and W.A. Goddard, J. Phys. Chem., 94, 8897 (1990).
C.M. Breneman and K.B. Wiberg, J. Comput. Chem., 11, 361 (1990).
P.P. Ewald, Ann. Der. Physik., 369, 253 (1921).
J.L. Pauly, H.A. Allaart, M.I. Rodriguez and R.J. Streck, Cancer Res., 55, 253 (1995).
C. Liu and R. Bai, J. Membr. Sci., 279, 336 (2006).
O. Kuzmina, T. Heinze and D. Wawro, ISRN Polym. Sci., Article ID 251950 (2012).
K.Y. Foo and B.H. Hameed, Chem. Eng. J., 156, 2 (2010).
M.H. Kalavathy, T. Karthikeyan, S. Rajgopal and L.R. Miranda, J. Colloid Interf. Sci., 292, 354 (2005).
Y.S. Ho and G. McKay, Chem. Eng. J., 70, 115 (1998).
V.J.P. Poots, G. McKay and J.J. Healy, J. Water Pollut. Control Fed., 50, 926 (1978).
C. Aharoni and M. Ungarish, J. Chem. Soc., Faraday Trans., 73, 456 (1977).
R. Han, Y. Wang, P. Han, J. Shi, J. Yang and Y. Lu, J. Hazard. Mater., 137, 550 (2006).
A.B. Zaki, M.Y. El-Sheikh, J. Evans and S.A. El-Safty, J. Colloid Interf. Sci., 221, 58 (2000).
V.K. Gupta, Ind. Eng. Chem. Res., 37, 192 (1998).
W.L. Jorgensen, J. Chandrasekhar, J.D. Madura, R.W. Impey and M.L. Klein, J. Chem. Phys., 79, 926 (1983).
E. Brodskaya, A.P. Lyubartsev and A. Laaksonen, J. Phys. Chem. B, 106, 6479 (2002).
G. Crini, Prog. Polym. Sci., 30, 38 (2005).