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phenol and nitrobenzene. Bioresour. Technol. 113, 121–126 (2012)
2. E. Igberase, P. Osifo, A. Ofomaja, The adsorption of copper (II) ions by polyaniline graft
chitosan beads from aqueous solution: Equilibrium, kinetic and desorption studies. J. Environ.
Chem. Eng. 2(1), 362–369 (2014)
3. E. Igberase, P. Osifo, Equilibrium, kinetic, thermodynamic and desorption studies of cadmium
and lead by polyaniline grafted cross-linked chitosan beads from aqueous solution. J. Ind. Eng.
Chem. 26(December), 340–347 (2015)
4. E. Igberase, P. Osifo, A. Ofomaja, The adsorption of Pb, Zn, Cu, Ni, and Cd by modified ligand
in a single component aqueous solution: equilibrium, kinetic, thermodynamic, and desorption
studies. Int. J. Anal. Chem. 2017 (2017)
5. K. Li, Y. Wang, M. Huang, H. Yan, H. Yang, S. Xiao, A. Li, Preparation of chitosan-graftpolyacrylamide magnetic composite microspheres for enhanced selective removal of mercury
ions from water. J. Colloid Interface Sci. 455, 261–270 (2015)
6. E. Igberase, P.O. Osifo, A comparison study of the adsorption of metal ions by chitosan
derivatives in aqueous solution (2020)
7. E. Igberase, P. Osifo, A. Ofomaja, Mathematical modelling of Pb 2+ , Cu 2+ , Ni 2+ , Zn 2+ , Cr 6+
and Cd 2+ ions adsorption from a synthetic acid mine drainage onto chitosan derivative in a
packed bed column. Environ. Technol. (United Kingdom) 39(24), 3203–3220 (2018)
8. P.O. Osifo, The use of chitosan beads for the adsorption and regeneration of heavy metals
(2007), p. 156
9. L. Li, J. Iqbal, Y. Zhu, P. Zhang, W. Chen, A. Bhatnagar, Y. Du, Ag-hydroxyapatite nanocomposite beads as a potential adsorbent for the efficient removal of toxic aquatic pollutants. Int.
J. Biol. Macromol. 120, 1752–1759 (2018)
10. M.O. Omorogie, J.O. Babalola, E.I. Unuabonah, W. Song, J.R. Gong, Efficient chromium
abstraction from aqueous solution using a low-cost biosorbent: Nauclea diderrichii seed
biomass waste. J. Saudi Chem. Soc. 20(1), 49–57 (2016)
11. A.A. Taha, M.A. Shreadah, A.M. Ahmed, H.F. Heiba, Multi-component adsorption of Pb(II),
Cd(II), and Ni(II) onto Egyptian Na-activated bentonite; equilibrium, kinetics, thermodynamics, and application for seawater desalination. J. Environ. Chem. Eng. 4(1), 1166–1180
(2016)
12. M. Aliabadi, M. Irani, J. Ismaeili, H. Piri, M.J. Parnian, Electrospun nanofiber membrane
of PEO/chitosan for the adsorption of nickel, cadmium, lead and copper ions from aqueous
solution. Chem. Eng. J. 220, 237–243 (2013)
13. K.B. Payne, T.M. Abdel-Fattah, Adsorption of divalent lead ions by zeolites and activated
carbon: effects of pH, temperature, and ionic strength. J. Environ. Sci. Heal. Part A 39(9),
2275–2291 (2004)
14. J. Wang, M. Liu, C. Duan, J. Sun, Y. Xu, Preparation and characterization of cellulose-based
adsorbent and its application in heavy metal ions removal. Carbohydr. Polym. 206 (2019),
pp. 837–843
15. V. Krsti´ c, T. Uroševi´ c, B. Pešovski, A review on adsorbents for treatment of water and
wastewaters containing copper ions. Chem. Eng. Sci. 192, 273–287 (2018)
16. D. Huang, J. Wu, L. Wang, X. Liu, J. Meng, X. Tang, Novel insight into adsorption and coadsorption of heavy metal ions and an organic pollutant by magnetic graphene nanomaterials
in water. Chem. Eng. J. 358 (2019), pp. 1399–1409
17. Y.S. Ho, A.E. Ofomaja, Kinetics and thermodynamics of lead ion sorption on palm kernel fibre
from aqueous solution. Process Biochem. 40(11), 3455–3461 (2005)
18. M. Madhava Rao, A. Ramesh, G. Purna Chandra Rao, K. Seshaiah, Removal of copper and
cadmium from the aqueous solutions by activated carbon derived from Ceiba pentandra hulls.
J. Hazard. Mater. 129(1–3) (2006), pp. 123–129
19. Y.S. Ho, G. McKay, Application of kinetic models to the sorption of copper(II) on to peat.
Adsorpt. Sci. Technol. 20(8), 797–815 (2002)
69
References
1. D. Li, Y. Wu, L. Feng, L. Zhang, Surface properties of SAC and its adsorption mechanisms for
phenol and nitrobenzene. Bioresour. Technol. 113, 121–126 (2012)
2. E. Igberase, P. Osifo, A. Ofomaja, The adsorption of copper (II) ions by polyaniline graft
chitosan beads from aqueous solution: Equilibrium, kinetic and desorption studies. J. Environ.
Chem. Eng. 2(1), 362–369 (2014)
3. E. Igberase, P. Osifo, Equilibrium, kinetic, thermodynamic and desorption studies of cadmium
and lead by polyaniline grafted cross-linked chitosan beads from aqueous solution. J. Ind. Eng.
Chem. 26(December), 340–347 (2015)
4. E. Igberase, P. Osifo, A. Ofomaja, The adsorption of Pb, Zn, Cu, Ni, and Cd by modified ligand
in a single component aqueous solution: equilibrium, kinetic, thermodynamic, and desorption
studies. Int. J. Anal. Chem. 2017 (2017)
5. K. Li, Y. Wang, M. Huang, H. Yan, H. Yang, S. Xiao, A. Li, Preparation of chitosan-graftpolyacrylamide magnetic composite microspheres for enhanced selective removal of mercury
ions from water. J. Colloid Interface Sci. 455, 261–270 (2015)
6. E. Igberase, P.O. Osifo, A comparison study of the adsorption of metal ions by chitosan
derivatives in aqueous solution (2020)
7. E. Igberase, P. Osifo, A. Ofomaja, Mathematical modelling of Pb 2+ , Cu 2+ , Ni 2+ , Zn 2+ , Cr 6+
and Cd 2+ ions adsorption from a synthetic acid mine drainage onto chitosan derivative in a
packed bed column. Environ. Technol. (United Kingdom) 39(24), 3203–3220 (2018)
8. P.O. Osifo, The use of chitosan beads for the adsorption and regeneration of heavy metals
(2007), p. 156
9. L. Li, J. Iqbal, Y. Zhu, P. Zhang, W. Chen, A. Bhatnagar, Y. Du, Ag-hydroxyapatite nanocomposite beads as a potential adsorbent for the efficient removal of toxic aquatic pollutants. Int.
J. Biol. Macromol. 120, 1752–1759 (2018)
10. M.O. Omorogie, J.O. Babalola, E.I. Unuabonah, W. Song, J.R. Gong, Efficient chromium
abstraction from aqueous solution using a low-cost biosorbent: Nauclea diderrichii seed
biomass waste. J. Saudi Chem. Soc. 20(1), 49–57 (2016)
11. A.A. Taha, M.A. Shreadah, A.M. Ahmed, H.F. Heiba, Multi-component adsorption of Pb(II),
Cd(II), and Ni(II) onto Egyptian Na-activated bentonite; equilibrium, kinetics, thermodynamics, and application for seawater desalination. J. Environ. Chem. Eng. 4(1), 1166–1180
(2016)
12. M. Aliabadi, M. Irani, J. Ismaeili, H. Piri, M.J. Parnian, Electrospun nanofiber membrane
of PEO/chitosan for the adsorption of nickel, cadmium, lead and copper ions from aqueous
solution. Chem. Eng. J. 220, 237–243 (2013)
13. K.B. Payne, T.M. Abdel-Fattah, Adsorption of divalent lead ions by zeolites and activated
carbon: effects of pH, temperature, and ionic strength. J. Environ. Sci. Heal. Part A 39(9),
2275–2291 (2004)
14. J. Wang, M. Liu, C. Duan, J. Sun, Y. Xu, Preparation and characterization of cellulose-based
adsorbent and its application in heavy metal ions removal. Carbohydr. Polym. 206 (2019),
pp. 837–843
15. V. Krsti´ c, T. Uroševi´ c, B. Pešovski, A review on adsorbents for treatment of water and
wastewaters containing copper ions. Chem. Eng. Sci. 192, 273–287 (2018)
16. D. Huang, J. Wu, L. Wang, X. Liu, J. Meng, X. Tang, Novel insight into adsorption and coadsorption of heavy metal ions and an organic pollutant by magnetic graphene nanomaterials
in water. Chem. Eng. J. 358 (2019), pp. 1399–1409
17. Y.S. Ho, A.E. Ofomaja, Kinetics and thermodynamics of lead ion sorption on palm kernel fibre
from aqueous solution. Process Biochem. 40(11), 3455–3461 (2005)
18. M. Madhava Rao, A. Ramesh, G. Purna Chandra Rao, K. Seshaiah, Removal of copper and
cadmium from the aqueous solutions by activated carbon derived from Ceiba pentandra hulls.
J. Hazard. Mater. 129(1–3) (2006), pp. 123–129
19. Y.S. Ho, G. McKay, Application of kinetic models to the sorption of copper(II) on to peat.
Adsorpt. Sci. Technol. 20(8), 797–815 (2002)
