References
Akgu, M., Karabakan, A., Acar, O. & Yurum, Y. (2006). Removal of silver (I) from aqueous solutions with clinoptilolite. Microporous and Mesoporous Materials, 94, 99– 104. Aseel M. Aljeboree, Abbas N. Alshirifi, & Ayad F. (2014). Kinetics and equilibrium study for the adsorption of textile dyes on coconut shell activated carbon; Arabian Journal of Chemistry 124-132 Cabrera, C., Gabaldon, C. & Marzal, P. (2005). Sorption characteristics of heavy metal ions by a natural zeolite. Journal of Chemical Technology and Biotechnology, 80, 477-481 Chen, Y., Pan, B., Li, H., Zhang, W., Lv, L. & Wu, L. (2010). Selective removal of Cu (II) ions by using cation-exchange resin-supported polyethyleneimine (PEI) nanoclusters. Environmental Science and Technology, 44: 3508-3513. Coruh, S. & Ergun, O.N. (2009). Ni2+ removal from aqueous solutions using conditioned clinoptilolites: kinetic and isotherm studies. Environmental Progress & Sustainable Energy, 28, 162–172. Das, N. (2015). Recovery of precious metals through biosorption—a review. Hydrometallurgy, 103(1), 180-189. El-Sherif, I. Y., Tolani, S., Ofosu, K., Mohamed, O. A. & Wanekaya, A. K. (2013). Polymeric nanofibers for the removal of Cr (III) from tannery waste water. Journal of Environment’al Management, 129, 410–413. Erdem, E., Karapinar, N. & Donat, R. (2004). The removal of heavy metal cations by natural zeolites. Journal of colloidal and Interface Science, 280(2), 309 – 314. García-Niño, W. R., & Pedraza-Chaverrí, J. (2014). Protective effect of curcumin against heavy metals-induced liver damage. Food Chemistry and Toxicology, 69, 182–201. Hanan E. Osman, Reham K. Badwy, & Hanan F. A., (2010). Usage of some agricultural by- products in the removal of some heavy metals from industrial wastewater. Journal of Phytology, 2(3): 51–62 Ho, Y.S. & McKay, G. (1999). The sorption of Lead (II) on peat. Water Research, 33, 578-584. Isidorov, V. (1997). Introduction to Chemical Eco-toxicology. Saint-Petersburg State University, 54-58. Kilic, M., Apaydin-Varol, E., & Putun, E.A., (2011). Adsorptive removal of phenol from aqueous solutions on activated carbon prepared from tobacco residues: Equilibrium, kinetics and thermodynamics. Journal of Hazardous Materials, 189, 397–403. ‘’Konne, J. L., & Opara, K. (2014). Remediation of nickel from crude oil obtained from Bomu Oil Field using cassava waste water starch stabilized magnetic nanoparticles. Energy and Environmental Research, 4(1), 25-31. Langergren, S., & Svenska, B. K. (1898); Zur theorie der sogenannten adsorption geloester stoffe. Veternskapsakad Nandlingar, 24, 1-39. Nagendran S. & Noor S. S. (2015). Dye adsorbent by pineapple activated carbon: H3PO4 and NaOH Activation ;arpn Journal of Engineering and Applied sciences. 10(20), november, issn 1819-6608 Oren, A.H. & Kaya, A. (2006) Factors affecting adsorption characteristics of Zn2+ on two natural zeolites. Journal of Hazardous Materials, 13, 59–65. Peric, J., Trgo, M. & Medvidovic, N.V. (2004). Removal of zinc, copper and lead by natural zeolite-a comparison of adsorption isotherms. Water Research, 38, 1893-1899. Qasem, N. A. A., Mohammed, R. H., & Lawal, D.U. (2021). Removal of heavy metal ions from wastewater: a comprehensive and critical review. npj Clean Water, 4, 36; https://doi.org/10.1038/s41545-021-00127-0 Qu, X., P., Alvarez, P. J. J., & Li, Q. (2013). Applications of nanotechnology in water and wastewater treatment. Water Research, 47: 3931–3946. Shi, Y., Kong, X., Zhang, C., Chen, Y., & Hua, Y., (2013). Adsorption of soy isoflavones by activated carbon: kinetics, thermodynamics and influence of soy oligosaccharides. Chemical Engineering Journal, 215–216, 113–121. Sikder M.T., Mihara Y., Islam M.S., Saito T., Tanaka S., & Kurasaki M., (2014). Preparation and characterization of chitosan-carboxymethyl-?-cyclodextrin entrapped nanozero-valent iron composite for Cu (II) and Cr (IV) removal from wastewater. Chemical Engineering Journal, 236: 378-387. Sobhy, M (2014), Yakout Removal of the hazardous, volatile, and organic compound benzene from aqueous solution using phosphoric acid activated carbon from rice husk Yakout. Chemistry Central Journal 8(52), 2 of 7 Taseidifar, M., Makavipour, F., Pashley, R. M. & Rahman, A. F. M. M. (2017). Removal of heavy metal ions from water using ion flotation. Environmental Technology and Innovations, 8, 182–190. Teh, C. Y., Wu, T. Y. & Juan, J. C. (2014). Potential use of rice starch in coagulation-flocculation process of Agro-industrial wastewater: Treatment performance and flocs characterization. Ecology and Engineering, 71: 509–519. Uzoije, A. P., Pascal A. P, Njoku1 C., Atu Ayuk1 A., Justus I. & Okolie1 (2015). Equilibrium, Thermodynamic and Kinetic Studies on Adsorption of Zinc (II) From Solutions Using Different Low-Cost Adsorbents. American Journal of Chemistry and Applications, 2(6): 129-140 Wang, J. & Chen, C. (2009). Biosorbents for heavy metals removal and their future. Biotechnology Advances, 195–226. Zahoora, M., Ullaha, A & Alam, S. (2019). Removal of Enrofloxacin from Water through Magnetic Nanocomposites Prepared from Pineapple Waste Biomass Surface. Engineering and Applied Electrochemistry, 55(5), 536–547.