54
Ismaeel AR, Edbey KM, Shagluf AM (2010) Study of Adsorption Mechanism, Mode, Isotherms
and kinetics of Dodecyl Sulfate from Raw drinking water on Activated Charcoal using pH
Measurements. Int J Chem Technol Res 2(2):1314–1319. ISSN: 0974-4290
Isobe N, Chen X, Kim UJ, Kimura S, Wada M, Saito T, Isogai A (2013) TEMPO-oxidized cellulose hydrogel as a high-capacity and reusable heavy metal ion adsorbent. J Hazard Mat
260:195–201. https://doi.org/10.1016/j.jhazmat.2013.05.024
Jaber M, Miehe-Brendle J, Michelin L, Delmotle L (2005) Heavy metal retention by organoclays: synthesis, application and retention mechanism. Chem Mat 17:5275–5281. https://doi.
org/10.1021/cm050754i
Jiang Y, Gao Q, Yu H, Chen Y, Deng F (2007) Intensively competitive adsorption for heavy
metal ions by PAMAM-SBA-15 and EDTA-PAMAM-SBA-15 inorganic–organic hybrid
materials. Microporous Mesoporous Mater 103(1–3):316–324. https://doi.org/10.1016/j.
micromeso.2007.02.024
Jin X, Yu C, Li Y, Qi Y, Yang L, Zhao G, Hu H (2011) Preparation of novel nano-adsorbent based
on organic–inorganic hybrid and their adsorption for heavy metals and organic pollutants presented in water environment. J Hazard Mat 186(2–3):1672–1680. https://doi.org/10.1016/j.
jhazmat.2010.12.057
Kithiia SM, Khroda GO (2011) Sediment s yields and transport within the Nairobi River basins,
Kenya: in river, coastal and Estuarine Morphodynamics. Tsinghua University Press, Beijing
Koo JH (2006) Polymer Nanocomposites – processing, characterization and applications.
McGraw-Hill, New York, pp 235–261
Kweon DK, Choi JK, Kim EK, Lim ST (2001) Adsorption of divalent metal ions by succinylated and oxidized corn starches. Carbohydr Polym 46(2):171–177. https://doi.org/10.1016/
S0144-8617(00)00300-3
Lagadic IL, Mitchell MK, Payne BD (2001) Highly effective adsorption of heavy metal ions by
a Thiol-functionalized magnesium Phyllosilicate clay. Environ Sci Technol 35(5):984–990.
https://doi.org/10.1021/es001526m
Levankumar L, Muthukumaran V, Gobinath MB (2009) Batch adsorption and kinetics of chromium (VI) removal from aqueous solutions by Ocimum americanum L. seed pods. J Hazard
Mater 161(2–3):709–713. https://doi.org/10.1016/j.jhazmat.2008.04.031
Li A, Zhang Q, Zhang G, Chen J, Fei Z, Liu F (2002) Adsorption of phenolic compounds from
aqueous solutions by a water compatible hyper crosslinked polymeric adsorbent. Chemosphere
47:981–989. https://doi.org/10.1016/S0045-6535(01)00222-3
Liu C, Bai R, Hong L (2006) Diethylenetriamine-grafted poly (glycidyl methacrylate) adsorbent for effective copper ion adsorption. J Colloid Interface Sci 303(1):99–108. https://doi.
org/10.1016/S0045-6535(01)00222-3
Liu Z, Wang H, Liu C, Jiang Y, Yu G, Mu X, Wang X (2012) Magnetic cellulose–chitosan hydrogels prepared from ionic liquids as reusable adsorbent for removal of heavy metal ions. Chem
Commun 48(59):7350–7352. https://doi.org/10.1039/c2cc17795a
Liu W, Tian S, Zhao X, Xie W, Gong Y, Zhao D (2015) Application of stabilized nanoparticles for
in situ remediation of metal-contaminated soil and groundwater: a critical review. Curr Poll
Rep 1(4):280–291. https://doi.org/10.1016/j.jcis.2006.07.057
Ma X, Liu X, Anderson DP, Chang PR (2015) Modification of porous starch for the adsorption of
heavy metal ions from aqueous solution. Food Chem 181:133–139. https://doi.org/10.1016/j.
foodchem.2015.02.089
Macht, F., Totsche, K. U., Eusterhues, K., & Pronk, G. (2010). Topography and surface properties
of clay minerals analyzed by atomic force microscopy 19
th World Congress of Soil Science,
Soil Solutions for a Changing World: Brisbane, Australia, pp 206–209
Mahajan G, Sud D (2012) Modified agricultural waste biomass with enhanced responsive properties for metal-ion remediation: a green approach. Appl Water Sci 2(4):299–308. https://doi.
org/10.1007/s13201-012-0050-5
Mitragotri S, Lahann J (2009) Physical approaches to biomaterial design. Nat Mat 8:15–23. https://
doi.org/10.1038/nmat2344
A. Sabir et al.
Ismaeel AR, Edbey KM, Shagluf AM (2010) Study of Adsorption Mechanism, Mode, Isotherms
and kinetics of Dodecyl Sulfate from Raw drinking water on Activated Charcoal using pH
Measurements. Int J Chem Technol Res 2(2):1314–1319. ISSN: 0974-4290
Isobe N, Chen X, Kim UJ, Kimura S, Wada M, Saito T, Isogai A (2013) TEMPO-oxidized cellulose hydrogel as a high-capacity and reusable heavy metal ion adsorbent. J Hazard Mat
260:195–201. https://doi.org/10.1016/j.jhazmat.2013.05.024
Jaber M, Miehe-Brendle J, Michelin L, Delmotle L (2005) Heavy metal retention by organoclays: synthesis, application and retention mechanism. Chem Mat 17:5275–5281. https://doi.
org/10.1021/cm050754i
Jiang Y, Gao Q, Yu H, Chen Y, Deng F (2007) Intensively competitive adsorption for heavy
metal ions by PAMAM-SBA-15 and EDTA-PAMAM-SBA-15 inorganic–organic hybrid
materials. Microporous Mesoporous Mater 103(1–3):316–324. https://doi.org/10.1016/j.
micromeso.2007.02.024
Jin X, Yu C, Li Y, Qi Y, Yang L, Zhao G, Hu H (2011) Preparation of novel nano-adsorbent based
on organic–inorganic hybrid and their adsorption for heavy metals and organic pollutants presented in water environment. J Hazard Mat 186(2–3):1672–1680. https://doi.org/10.1016/j.
jhazmat.2010.12.057
Kithiia SM, Khroda GO (2011) Sediment s yields and transport within the Nairobi River basins,
Kenya: in river, coastal and Estuarine Morphodynamics. Tsinghua University Press, Beijing
Koo JH (2006) Polymer Nanocomposites – processing, characterization and applications.
McGraw-Hill, New York, pp 235–261
Kweon DK, Choi JK, Kim EK, Lim ST (2001) Adsorption of divalent metal ions by succinylated and oxidized corn starches. Carbohydr Polym 46(2):171–177. https://doi.org/10.1016/
S0144-8617(00)00300-3
Lagadic IL, Mitchell MK, Payne BD (2001) Highly effective adsorption of heavy metal ions by
a Thiol-functionalized magnesium Phyllosilicate clay. Environ Sci Technol 35(5):984–990.
https://doi.org/10.1021/es001526m
Levankumar L, Muthukumaran V, Gobinath MB (2009) Batch adsorption and kinetics of chromium (VI) removal from aqueous solutions by Ocimum americanum L. seed pods. J Hazard
Mater 161(2–3):709–713. https://doi.org/10.1016/j.jhazmat.2008.04.031
Li A, Zhang Q, Zhang G, Chen J, Fei Z, Liu F (2002) Adsorption of phenolic compounds from
aqueous solutions by a water compatible hyper crosslinked polymeric adsorbent. Chemosphere
47:981–989. https://doi.org/10.1016/S0045-6535(01)00222-3
Liu C, Bai R, Hong L (2006) Diethylenetriamine-grafted poly (glycidyl methacrylate) adsorbent for effective copper ion adsorption. J Colloid Interface Sci 303(1):99–108. https://doi.
org/10.1016/S0045-6535(01)00222-3
Liu Z, Wang H, Liu C, Jiang Y, Yu G, Mu X, Wang X (2012) Magnetic cellulose–chitosan hydrogels prepared from ionic liquids as reusable adsorbent for removal of heavy metal ions. Chem
Commun 48(59):7350–7352. https://doi.org/10.1039/c2cc17795a
Liu W, Tian S, Zhao X, Xie W, Gong Y, Zhao D (2015) Application of stabilized nanoparticles for
in situ remediation of metal-contaminated soil and groundwater: a critical review. Curr Poll
Rep 1(4):280–291. https://doi.org/10.1016/j.jcis.2006.07.057
Ma X, Liu X, Anderson DP, Chang PR (2015) Modification of porous starch for the adsorption of
heavy metal ions from aqueous solution. Food Chem 181:133–139. https://doi.org/10.1016/j.
foodchem.2015.02.089
Macht, F., Totsche, K. U., Eusterhues, K., & Pronk, G. (2010). Topography and surface properties
of clay minerals analyzed by atomic force microscopy 19
th World Congress of Soil Science,
Soil Solutions for a Changing World: Brisbane, Australia, pp 206–209
Mahajan G, Sud D (2012) Modified agricultural waste biomass with enhanced responsive properties for metal-ion remediation: a green approach. Appl Water Sci 2(4):299–308. https://doi.
org/10.1007/s13201-012-0050-5
Mitragotri S, Lahann J (2009) Physical approaches to biomaterial design. Nat Mat 8:15–23. https://
doi.org/10.1038/nmat2344
A. Sabir et al.
