Removal of Cadmium, Copper, and Lead From Water Using Bio-Sorbent From Treated Olive Mill Solid Residue

1. Saidan, MN, Al-Addous, M, Al-Weshah, RA, Obada, I, Alkasrawi, M, Barbana, N. Wastewater reclamation in major Jordanian industries: a viable component of a circular economy. Water. 2020;12:1276.
Google Scholar | Crossref2. Al Sawalqa, HA, Hammad, RN, Al Nassar, FH, Suleiman, SS. Urban rainwater harvesting: an approach for water provision for cities in semi-arid regions: the case of Um Uthaina neighbourhood in Amman – Jordan. J Eng Archit. 2020;8:31-36. doi:10.15640/jea.v8n1a3
Google Scholar | Crossref3. Abdulla, FA, Alfarra, A, Qdais, HA, Sonneveld, B. Evaluation of wastewater treatment plants in Jordan and suitability for reuse. Acad J Environ Sci. 2016;4:111-117.
Google Scholar4. Ammary, BY . Wastewater reuse in Jordan: present status and future plans. Desalination. 2007;211:164-176.
Google Scholar | Crossref5. Agoro, MA, Adeniji, AO, Adefisoye, MA, Okoh, OO. Heavy metals in wastewater and sewage sludge from selected municipal treatment plants in Eastern Cape Province, South Africa. Water. 2020;12:2746.
Google Scholar | Crossref6. Ngoc, NT, Chuyen, NV, Thao, NT, et al. Chromium, cadmium, lead, and arsenic concentrations in water, vegetables, and seafood consumed in a coastal area in northern Vietnam. Environ Health Insights. 2020;14:1178630220921410.
Google Scholar | SAGE Journals7. Ali, H, Khan, E, Ilahi, I. Environmental chemistry and ecotoxicology of hazardous heavy metals: environmental persistence, toxicity, and bioaccumulation. J Chem. 2019;2019:1-14.
Google Scholar8. Yu, G, Wang, X, Liu, J, et al. Applications of nanomaterials for heavy metal removal from water and soil: a review. Sustainability. 2021;13:713.
Google Scholar | Crossref9. Shara, S, Moersidik, SS, Soesilo, TEB. Potential health risks of heavy metals pollution in the downstream of Citarum River. IOP Conf Ser Earth Environ Sci. 2021;623:012061.
Google Scholar | Crossref10. Briffa, J, Sinagra, E, Blundell, R. Heavy metal pollution in the environment and their toxicological effects on humans. Heliyon. 2020;6:e04691.
Google Scholar | Crossref | Medline11. Usman, UL, Danhauwa, SA, Sajad, S, Banerjee, S. Assessment of heavy metal in some commonly used cosmetic product and associated health risk in Nigeria: threat to public health. Macromol Symp. 2021;397:2100161.
Google Scholar | Crossref12. Nriagu, JO . A global assessment of natural sources of atmospheric trace metals. Nature. 1989;338:47-49.
Google Scholar | Crossref13. EPA, US . National primary drinking water guidelines. Epa 816-F-09-004. 2009;1:7.
Google Scholar14. Ibrahim, K, Ed-Deen, NT, Khoury, H. Use of natural chabazite–phillipsite tuff in wastewater treatment from electroplating factories in Jordan. Environ Geol. 2002;41:547-551.
Google Scholar | Crossref15. Ibrahim, KM, Akashah, T. Lead removal from wastewater using faujasite tuff. Environ Geol. 2004;46:865-870.
Google Scholar | Crossref | ISI16. Hubicki, Z, Koodynsk, D. Selective removal of heavy metal ions from waters and waste waters using ion exchange methods. In: Kilislioglu A, ed. Ion Exchange Technologies. InTech; 2012;193-240. doi:10.5772/51040
Google Scholar | Crossref17. Al Dwairi, RA, Ibrahim, KM, Khoury, HN. Potential use of faujasite–phillipsite and phillipsite–chabazite tuff in purification of treated effluent from domestic wastewater treatment plants. Environ Earth Sci. 2014;71:5071-5078.
Google Scholar | Crossref18. Ibrahim, K, Khoury, H, Tuffaha, R. Mo and Ni removal from drinking water using zeolitic tuff from Jordan. Minerals. 2016;6:116.
Google Scholar | Crossref19. Mnasri-Ghnimi, S, Frini-Srasra, N. Removal of heavy metals from aqueous solutions by adsorption using single and mixed pillared clays. Appl Clay Sci. 2019;179:105151.
Google Scholar | Crossref20. Hawari, AH, Mulligan, CN. Biosorption of lead(II), cadmium(II), copper(II) and nickel(II) by anaerobic granular biomass. Bioresour Technol. 2006;97:692-700.
Google Scholar | Crossref | Medline21. Ince, M, Kaplan İnce, O. An overview of adsorption technique for heavy metal removal from water/wastewater: a critical review. Int J Pure Appl Biosci. 2017;3:10-19.
Google Scholar22. Abu-Hawwas, JK, Ibrahim, KM, Musleh, SM. Characterization of Jordanian Porcelanite rock with reference to the adsorption behavior of lead ions from aqueous solution. Orient J Chem. 2018;34:663-674.
Google Scholar | Crossref23. Tang, X, Zheng, H, Teng, H, et al. Chemical coagulation process for the removal of heavy metals from water: a review. Desalination Water Treat. 2016;57:1733-1748.
Google Scholar | Crossref24. Un, UT, Ocal, SE. Removal of heavy metals (Cd, Cu, Ni) by electrocoagulation. Int J Environ Sci Dev. 2015;6:425-429.
Google Scholar | Crossref25. Kikuchi, T, Tanaka, S. Biological removal and recovery of toxic heavy metals in water environment. Crit Rev Environ Sci Technol. 2012;42:1007-1057.
Google Scholar | Crossref26. Chai, WS, Tan, WG, Halimatul Munawaroh, HS, Gupta, VK, Ho, SH, Show, PL. Multifaceted roles of microalgae in the application of wastewater biotreatment: a review. Environ Pollut. 2021;269:116236.
Google Scholar | Crossref | Medline27. Abu-Hawwas, JK, Ibrahim, KM, Musleh, SM. The Langmuir isotherm adsorption equation: the monolayer approach. IOP Conf Ser Mater Sci Eng. 2016;107:012067.
Google Scholar | Crossref28. Agarwal, M, Singh, K. Heavy metal removal from wastewater using various adsorbents: a review. J Water Reuse Desalination. 2017;7:387-419.
Google Scholar | Crossref29. Zwain, HM, Vakili, M, Dahlan, I. Waste material adsorbents for zinc removal from wastewater: a comprehensive review. Int J Chem Eng. 2014;2014:1-13.
Google Scholar | Crossref30. De Gisi, S, Lofrano, G, Grassi, M, Notarnicola, M. Characteristics and adsorption capacities of low-cost sorbents for wastewater treatment: a review. Sustain Mater Technol. 2016;9:10-40.
Google Scholar | Crossref31. Carvalho, J, Araujo, J, Castro, F. Alternative low-cost adsorbent for water and wastewater decontamination derived from eggshell waste: an overview. Waste Biomass Valorization. 2011;2:157-167.
Google Scholar | Crossref32. Nguyen, K, Nguyen, B, Nguyen, H, Nguyen, H. Adsorption of arsenic and heavy metals from solutions by unmodified iron-ore sludge. Appl Sci. 2019;9:619.
Google Scholar | Crossref33. Hegazi, HA . Removal of heavy metals from wastewater using agricultural and industrial wastes as adsorbents. HBRC J. 2013;9:276-282.
Google Scholar | Crossref34. Rambabu, K, Thanigaivelan, A, Bharath, G, Sivarajasekar, N, Banat, F, Show, PL. Biosorption potential of Phoenix dactylifera coir wastes for toxic hexavalent chromium sequestration. Chemosphere. 2021;268:128809.
Google Scholar | Crossref | Medline35. Šoštarić, TD, Petrović, MS, Pastor, FT, et al. Study of heavy metals biosorption on native and alkali-treated apricot shells and its application in wastewater treatment. J Mol Liq. 2018;259:340-349.
Google Scholar | Crossref36. Al Ketife, AMD, Almomani, F, Znad, H. Sustainable removal of copper from wastewater using chemically treated bio-sorbent: characterization, mechanism and process kinetics. Environ Technol Innov. 2021;23:101555.
Google Scholar | Crossref37. Al-Shaweesh, M, Mohammed, M, Al-Kabariti, D, et al. Olive mill wastewater (OMW) treatment by using ferric oxide dephenolization and chemical oxygen demand removal. Glob NEST J. 2018;20:558-563.
Google Scholar | Crossref38. Bawab, AA, Ghannam, N, Abu-Mallouh, S, et al. Olive mill wastewater treatment in Jordan: a review. IOP Conf Ser Mater Sci Eng. 2018;305:012002.
Google Scholar | Crossref39. Al-Essa, K . Activation of Jordanian bentonite by hydrochloric acid and its potential for olive mill wastewater enhanced treatment. J Chem. 2018;2018:1-10.
Google Scholar | Crossref40. Achak, M, Boumya, W, Ouazzani, N, Mandi, L. Preliminary evaluation of constructed wetlands for nutrients removal from olive mill wastewater (OMW) after passing through a sand filter. Ecol Eng. 2019;136:141-151.
Google Scholar | Crossref41. Qdais, HA, Alshraideh, H. Selection of management option for solid waste from olive oil industry using the analytical hierarchy process. J Mater Cycles Waste Manag. 2016;18:177-185.
Google Scholar | Crossref | ISI42. Toscano, P, Montemurro, F. Olive mill by-products management. In: Muzzalupo I, ed. Olive Germplasm: The Olive Cultivation, Table Olive and Olive Oil Industry in Italy. InTech; 2012:173-200.
Google Scholar | Crossref43. Khdair, A, Abu-Rumman, G. Sustainable environmental management and valorization options for olive mill byproducts in the Middle East and North Africa (MENA) region. Processes. 2020;8:671.
Google Scholar | Crossref44. Gharaibeh, SH, Abu-el-sha’r, WY, Al-Kofahi, MM. Removal of selected heavy metals from aqueous solutions using processed solid residue of olive mill products. Water Res. 1998;32:498-502.
Google Scholar | Crossref | ISI45. Blázquez, G, Hernáinz, F, Calero, M, Ruiz-Núñez, LF. Removal of cadmium ions with olive stones: the effect of somes parameters. Process Biochem. 2005;40:2649-2654.
Google Scholar | Crossref46. Hawari, A, Rawajfih, Z, Nsour, N. Equilibrium and thermodynamic analysis of zinc ions adsorption by olive oil mill solid residues. J Hazard Mater. 2009;168:1284-1289.
Google Scholar | Crossref | Medline47. Abu Tayeh, HN, Azaizeh, H, Gerchman, Y. Circular economy in olive oil production – olive mill solid waste to ethanol and heavy metal sorbent using microwave pretreatment. Waste Manag. 2020;113:321-328.
Google Scholar | Crossref | Medline48. Abdelhadi, SO, Dosoretz, CG, Rytwo, G, Gerchman, Y, Azaizeh, H. Production of biochar from olive mill solid waste for heavy metal removal. Bioresour Technol. 2017;244:759-767.
Google Scholar | Crossref | Medline49. Ahmed, A-MM, Ali, AE, Ghazy, AH. Adsorption separation of nickel from wastewater by using olive stones. Adv J Chem A. 2019;2(1):79-93. doi:10.29088/SAMI/AJCA.2019.2.7993
Google Scholar | Crossref50. Wuana, RA, Okieimen, FE. Heavy metals in contaminated soils: a review of sources, chemistry, risks and best available strategies for remediation. ISRN Ecol. 2011;2011:1-20.
Google Scholar | Crossref51. Masindi, V, Muedi, KL. Environmental contamination by heavy metals. In: Saleh H, Aglan R, eds. Heavy Metals. InTech; 2018:115-134.
Google Scholar | Crossref52. Tangahu, BV, Sheikh Abdullah, SR, Basri, H, Idris, M, Anuar, N, Mukhlisin, M. A review on heavy metals (As, Pb, and Hg) uptake by plants through phytoremediation. Int J Chem Eng. 2011;2011:1-31.
Google Scholar | Crossref53. Long, M, Jiang, H, Li, X. Biosorption of Cu2+, Pb2+, Cd2+ and their mixture from aqueous solutions by Michelia figo sawdust. Sci Rep. 2021;11:11527.
Google Scholar | Crossref | Medline54. Yao, N, Wang, J, Zhou, Y. Rapid determination of the chemical oxygen demand of water using a thermal biosensor. Sensors. 2014;14:9949-9960.
Google Scholar | Crossref55. Kumar, A, Bisht, BS, Joshi, VD, Singh, AK, Talwar, A. Physical, chemical and bacteriological study of water from rivers of Uttarakhand. J Hum Ecol. 2010;32:169-173.
Google Scholar | Crossref56. Kumar, A, Schreiter, IJ, Wefer-Roehl, A, Tsechansky, L, Schüth, C, Graber, ER. Production and utilization of biochar from organic wastes for pollutant control on contaminated sites. In: Prasad MNV, Shih K, eds. Environmental Materials and Waste. Elsevier; 2016:91-116.
Google Scholar57. McKnight, KB, McKnight, KH, Harper, KT. Cation exchange capacities and mineral element concentrations of macrofungal stipe tissue. Mycologia. 1990;82:91.
Google Scholar | Crossref58. Barbano, DM, Clark, JL, Dunham, CE, Flemin, RJ. Kjeldahl method for determination of total nitrogen content of milk: collaborative study. J AOAC Int. 1990;73:849-859.
Google Scholar | Crossref59. Danaci, D, Webley, PA, Petit, C. Guidelines for techno-economic analysis of adsorption processes. Front Chem Eng. 2021;2:1-11. doi:10.3389/fceng.2020.602430

留言 (0)

沒有登入
gif