ISSN: 0256-1115 (print version) ISSN: 1975-7220 (electronic version)
Copyright © 2024 KICHE. All rights reserved

Articles & Issues

Language
English
Conflict of Interest
In relation to this article, we declare that there is no conflict of interest.
Publication history
Received September 20, 2009
Accepted November 18, 2009
articles This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright © KIChE. All rights reserved.

All issues

Copper biosorption by Myriophyllum spicatum: Effects of temperature and pH

Key Lab of Urban Environment and Health, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, Fujian 361021, China
Korean Journal of Chemical Engineering, July 2010, 27(4), 1239-1245(7), 10.1007/s11814-010-0183-x
downloadDownload PDF

Abstract

Using submerged aquatic plants is a cheap and clean technique to remediate heavy metal water pollution at low concentrations. Biosorption of Cu(II) ions by fresh tissues of Myriophyllum spicatum, a submerged aquatic plant, was characterized in an artificial solution system under different values of contact time, temperature and pH in this paper. Cu(II) biosorption was fast and equilibrium was attained within 20 min. The equilibrium biosorption data were analyzed using three widely applied isotherm models: Langmuir, Freundlich and Redlich-Peterson isotherm. Langmuir isotherm parameters obtained from the three Langmuir linear equations by using linear method were dissimilar, except when the non-linear method was used. Best fits were yielded with Langmuir and Redlich-Peterson isotherms (R2=0.961-0.992 and 0.990-0.998, respectively). The saturated monolayer biosorption capacity of M. spicatum for Cu(II) at 298 K was calculated to be 0.19 mmol/g. The biosorption capacity of M. spicatum for Cu(II) increased with increasing pH, and the resulting isotherms were well described by Langmuir and extended Langmuir models (R2=0.931-0.993 and 0.961, respectively). The comparison of calculated qe and experimental qe values showed that the extended Langmuir model had a better simulation for Cu(II) biosorption by M. spicatum than the Langmuir isotherm model. FT-IR was used to characterize the interaction between M. spicatum and Cu(II), with the results indicating that carboxyl groups played an important role in Cu(II) binding.

References

Abu Al-rub FA, El-Naas MH, Ashour I, Process Biochem., 41, 457 (2006)
Amini M, Younesi H, Bahramifar N, Lorestani AAZ, Ghorbani F, Daneshi A, Sharifzadeh M, J. Hazard. Mater., 154(1-3), 694 (2008)
Rivera-Utrilla J, Bautista-Toledo I, Ferro-Garcya MA, Carbon., 41, 323 (2003)
Ucun H, Aksakal O, Yildiz E, J. Hazard. Mater., 161(2-3), 1040 (2009)
Prasher SO, Beaugeard M, Hawari J, Environ. Technol., 25, 1097 (2004)
Lee MG, Lim JH, Kam SK, Korean J. Chem. Eng., 19(2), 277 (2002)
Qi BC, Aldrich C, Bioresource Technol., 99, 5595 (2008)
Basci N, Kocadagistan E, Kocadagistan B, Desalination, 164(2), 135 (2004)
Martinez M, Miralles N, Hidalgo S, Fiol N, Villaescusa I, Poch J, J. Hazard. Mater., 133(1-3), 203 (2006)
Gong R, Liu L, Feng M, Zhao J, Liu X, Ni S, Korean J. Chem. Eng., 26(2), 462 (2009)
Wang XS, Li ZZ, Sun C, J. Hazard. Mater., 153(3), 1176 (2008)
Saeed A, Iqbal M, Akhtar MW, J. Hazard. Mater., B117, 65 (2005)
Kim TY, Park SK, Cho SY, Kim HB, Kang Y, Kim SD, Kim SJ, Korean J. Chem. Eng., 22(1), 91 (2005)
GuptaVK, Shrivastava AK, Neeraj J, Water Res., 35, 4079 (2001)
Badmus MOA, Audu TOK, Anyata B, Korean J. Chem. Eng., 24(2), 246 (2007)
Anna S, Tsonka G, Danka I, Environ. Eng. Sci., 25, 627 (2008)
Lembi CA, Waaland JR, Algae and human affairs., Cambridge University Press, NY (1988)
Volesky B, Biosorption of heavy metals., CRC Press Inc., Boca Raton, FL (1990)
Kazem N, Reza S, Environ. Eng. Sci., 26, 1009 (2009)
Kratochvil D, Volesky B, Water Res., 34, 3186 (2000)
Harris PO, Ramelow GJ, Environ. Sci. Technol., 24, 220 (1990)
Schneider IAH, Rubio J, Environ. Sci. Technol., 33, 2213 (1999)
Ozer A, Ozer D, J. Hazard. Mater., 100(1-3), 219 (2003)
Ho YS, Carbon., 42, 2115 (2004)
Hall KR, Eagleton LC, Acrivos A, Ind. Eng. Chem. Fundam., 5, 212 (1966)
Karagunduz A, Kaya Y, Keskinler B, J. Hazard. Mater., B131, 79 (2006)
Khan AA, Singh RP, J. Colloid Sci., 24, 33 (1987)
Karthikeyan G, Anbalagan K, Andal NM, J. Chem. Sci., 116, 119 (2004)
Tunali S, Akar T, Ozcan AS, Kiran S, Ozcan A, Sep. Purif. Technol., 47(3), 105 (2006)
Ma W, Tobin JM, Biochem. Eng. J., 18, 33 (2004)
Yuan HP, Zhang JH, Lu ZM, Min H, Wu C, J. Hazard. Mater., 164(2-3), 423 (2009)
Aravindhan R, Madhan B, Rao JR, Environ. Sci. Technol., 38, 300 (2004)

The Korean Institute of Chemical Engineers. F5, 119, Anam-ro, Seongbuk-gu, 233 Spring Street Seoul 02856, South Korea.
TEL. No. +82-2-458-3078FAX No. +82-507-804-0669E-mail : kiche@kiche.or.kr

Copyright (C) KICHE.all rights reserved.

- Korean Journal of Chemical Engineering 상단으로