20
1 A Comprehensive Approach to Heavy Metal Removal by Adsorption …
47. M. Kobya, E. Dermirbas, E. Senturk, M. Ince, Adsorption of metal ions from aqueous solutions
by activated carbon prepared from apricot stone. Biores. Technol. 96, 1518–1521 (2005)
48. T.S. Anirudhan, P.S. Suchithra, Synthesis and characterization of tannin-immobilised hydrotalcite as a potential adsorbent of metal ions in effluent treatments. Appl. Clay Sci. 42, 214–223
(2008)
49. M. Imamoglu, O. Tekir, Removal of copper(II) and lead(II) ions from aqueous solutions
by adsorption on activated carbon from a new precursor hazelnut husks. Desalination 228,
108–113 (2008)
50. A. Ozer, D. Ozer, A. Ozer, The adsorption of copper(II) ions onto dehydrated wheat bran
(DWB): determination of the equilibrium and thermodynamic parameters. Proc. Biochem.
39, 2183–2191 (2004)
51. K. Kadirvelu, K. Thamaraiselvi, C. Namasivayam, Adsorption of nickel(II) from aqueous
solution onto activated carbon prepared from coirpith. Sep. Purif. Technol. 24, 497–505 (2001)
52. 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. Health 39, 2275–2291
(2004)
53. D. Mohan, K.P. Singh, Single and multi component adsorption of cadmium and zinc using
activated carbon derived from bagasse-an agricultural waste. Water Res. 36, 2304–2318 (2002)
54. W. Song, V.H. Grassian, S.C. Larsen, High yield method for nanocrystalline zeolite synthesis,
Chem. Comm. (2005) 2951–2953
55. S.M. Shaheen, A.S. Derbalah, F.S. Moghanm, Removal of heavy metals from aqueous solution
by zeolite in competitive system. Inter. J. Environ. Sci. Dev. 3 (2012)
56. S. Wang, Y. Peng, Natural zeolites as effective adsorbents in water and wastewater treatment.
Chem. Eng. J. 156, 11–24 (2010)
57. K. Gedik, I. Imamoglu, Removal of cadmium from aqueous solutions using clinoptilolite:
influence of pretreatment and regeneration. J. Haz. Mater. 155, 385–392 (2008)
58. A. Gunay, E. Arslankaya, I. Tosun, Lead removal from aqueous solution by natural and
pretreated clinoptilolite: adsorption equilibrium and kinetics. J. Haz. Mater. 146, 362–371
(2007)
59. A. Dirmirkou, M.K. Doula, Use of clinoptilolite and an Fe-overexchanged clinoptilolite in
Zn 2+ and Mn 2+ removal from drinking water. Desalination 224, 280–292 (2008)
60. J. Peric, M. Trgo, N.V. Medvidovic, Removal of zinc, copper, and lead by natural zeolite-a
comparison of adsorption isotherms. Water Res. 38, 1893–1899 (2004)
61. M. Nascimento, P.F. Prado, P.S.M. Soares, V.P. De Souza, Thermodynamic study of the
synthesis of zeolites from coal ash and its use as sorbents for heavy metals (Centre for Mineral
Technology-CETEM-Ministry of Sci. Technol. Inovation, MCTI, Brazil, 2012)
62. S. Montolito, L. Guerrero, R. Borja, E. Sanchez, Z. Milan, I. Cortes, A. Rubia, Application of
natural zeolites in anaerobic digestion process: a review. Appl. Clay Sci. 58, 125–133 (2012)
63. G. Calzaferri, D. Bruhwiler, S. Megelski, M. Pfenniger, M. Pauchard, B. Hennessy, H. Maas,
A. Devaux, A. Graf, Playing with dye molecules at the inner and outer surface of zeolite.
Solid States Sci. 2, 421–447 (2000)
64. M. Kragovic, A. Dakovic, Z. Sekulic, M. Trgo, M. Ugrina, J. Peric, G.D. Gatta, Removal of
lead from aqueous solutions by using the natural and Fe(III)-modified zeolite. App. Surf. Sci.
258, 3667–3673 (2012)
65. A. Chojnacki, Katarzyna Chojnacka, J. Hoffmann, H. Górecki, The application of natural
zeolites for mercury removal: From laboratory tests to industrial scale. Miner. Eng. 17, 933–
937 (2004). https://doi.org/10.1016/j.mineng.2004.03.002
66. R. Shawabkeh, Equilibrium study and kinetics of Cu 2+ removal from water by zeolite prepared
from oil shale ash. Proc. Safety Environ. Protect. 87, 261–266 (2009)
67. M. Panayotova, B. Velikov, Kinetics of heavy metal ions removal by use of natural zeolite. J.
Environ. Sci. Health. 37, 139–147 (2002)
68. S. Kocaoba, Y. Orhan, T. Akyuz, Kinetics and equilibrium studies of heavy metal ions removal
by use of natural zeolite. Desalination 214, 1–10 (2007)
1 A Comprehensive Approach to Heavy Metal Removal by Adsorption …
47. M. Kobya, E. Dermirbas, E. Senturk, M. Ince, Adsorption of metal ions from aqueous solutions
by activated carbon prepared from apricot stone. Biores. Technol. 96, 1518–1521 (2005)
48. T.S. Anirudhan, P.S. Suchithra, Synthesis and characterization of tannin-immobilised hydrotalcite as a potential adsorbent of metal ions in effluent treatments. Appl. Clay Sci. 42, 214–223
(2008)
49. M. Imamoglu, O. Tekir, Removal of copper(II) and lead(II) ions from aqueous solutions
by adsorption on activated carbon from a new precursor hazelnut husks. Desalination 228,
108–113 (2008)
50. A. Ozer, D. Ozer, A. Ozer, The adsorption of copper(II) ions onto dehydrated wheat bran
(DWB): determination of the equilibrium and thermodynamic parameters. Proc. Biochem.
39, 2183–2191 (2004)
51. K. Kadirvelu, K. Thamaraiselvi, C. Namasivayam, Adsorption of nickel(II) from aqueous
solution onto activated carbon prepared from coirpith. Sep. Purif. Technol. 24, 497–505 (2001)
52. 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. Health 39, 2275–2291
(2004)
53. D. Mohan, K.P. Singh, Single and multi component adsorption of cadmium and zinc using
activated carbon derived from bagasse-an agricultural waste. Water Res. 36, 2304–2318 (2002)
54. W. Song, V.H. Grassian, S.C. Larsen, High yield method for nanocrystalline zeolite synthesis,
Chem. Comm. (2005) 2951–2953
55. S.M. Shaheen, A.S. Derbalah, F.S. Moghanm, Removal of heavy metals from aqueous solution
by zeolite in competitive system. Inter. J. Environ. Sci. Dev. 3 (2012)
56. S. Wang, Y. Peng, Natural zeolites as effective adsorbents in water and wastewater treatment.
Chem. Eng. J. 156, 11–24 (2010)
57. K. Gedik, I. Imamoglu, Removal of cadmium from aqueous solutions using clinoptilolite:
influence of pretreatment and regeneration. J. Haz. Mater. 155, 385–392 (2008)
58. A. Gunay, E. Arslankaya, I. Tosun, Lead removal from aqueous solution by natural and
pretreated clinoptilolite: adsorption equilibrium and kinetics. J. Haz. Mater. 146, 362–371
(2007)
59. A. Dirmirkou, M.K. Doula, Use of clinoptilolite and an Fe-overexchanged clinoptilolite in
Zn 2+ and Mn 2+ removal from drinking water. Desalination 224, 280–292 (2008)
60. J. Peric, M. Trgo, N.V. Medvidovic, Removal of zinc, copper, and lead by natural zeolite-a
comparison of adsorption isotherms. Water Res. 38, 1893–1899 (2004)
61. M. Nascimento, P.F. Prado, P.S.M. Soares, V.P. De Souza, Thermodynamic study of the
synthesis of zeolites from coal ash and its use as sorbents for heavy metals (Centre for Mineral
Technology-CETEM-Ministry of Sci. Technol. Inovation, MCTI, Brazil, 2012)
62. S. Montolito, L. Guerrero, R. Borja, E. Sanchez, Z. Milan, I. Cortes, A. Rubia, Application of
natural zeolites in anaerobic digestion process: a review. Appl. Clay Sci. 58, 125–133 (2012)
63. G. Calzaferri, D. Bruhwiler, S. Megelski, M. Pfenniger, M. Pauchard, B. Hennessy, H. Maas,
A. Devaux, A. Graf, Playing with dye molecules at the inner and outer surface of zeolite.
Solid States Sci. 2, 421–447 (2000)
64. M. Kragovic, A. Dakovic, Z. Sekulic, M. Trgo, M. Ugrina, J. Peric, G.D. Gatta, Removal of
lead from aqueous solutions by using the natural and Fe(III)-modified zeolite. App. Surf. Sci.
258, 3667–3673 (2012)
65. A. Chojnacki, Katarzyna Chojnacka, J. Hoffmann, H. Górecki, The application of natural
zeolites for mercury removal: From laboratory tests to industrial scale. Miner. Eng. 17, 933–
937 (2004). https://doi.org/10.1016/j.mineng.2004.03.002
66. R. Shawabkeh, Equilibrium study and kinetics of Cu 2+ removal from water by zeolite prepared
from oil shale ash. Proc. Safety Environ. Protect. 87, 261–266 (2009)
67. M. Panayotova, B. Velikov, Kinetics of heavy metal ions removal by use of natural zeolite. J.
Environ. Sci. Health. 37, 139–147 (2002)
68. S. Kocaoba, Y. Orhan, T. Akyuz, Kinetics and equilibrium studies of heavy metal ions removal
by use of natural zeolite. Desalination 214, 1–10 (2007)
