The Review of Treatment of Copper Ion in Wastewater and Comparison Between Four Treatment
DOI:
https://doi.org/10.61173/vy1p9a69Keywords:
Copper ion removal, Wastewater treatment, Adsorption, Electrochemical cell, Membrane filtrationAbstract
This paper presents a comprehensive review of various methods used to remove copper ions from wastewater, highlighting their efficiency and feasibility. The main focus is on adsorption, ion flotation, membrane-based techniques, and electrochemical cells, with a particular emphasis on innovative approaches like the use of graphene oxide electrodes. The comparison and analysis section assesses each method’s removal efficiency, operational challenges, and costs, providing a critical perspective on their practical application in industrial settings.
References
[1] Thomas, M., Kozik, V., Bąk, A., Barbusiński, K., Jazowiecka-Rakus, J., & Jampilek, J. (2021, January 31). Removal of heavy metal ions from wastewaters: An application of sodium trithiocarbonate and wastewater toxicity assessment. Materials (Basel, Switzerland). https://www. ncbi.nlm.nih.gov/pmc/articles/PMC7866974/#B22-materials-14-00655
[2] Neuroanatomy, middle cerebral artery - statpearls - NCBI bookshelf. (n.d.). https://www.ncbi.nlm.nih.gov/ books/NBK526002/
[3] U.S. Department of Health and Human Services. (n.d.). Office of dietary supplements - copper. NIH Office of Dietary Supplements. https://ods.od.nih.gov/factsheets/Copper-Consumer/#:~:text=Yes%2C%20copper%20can%20 be%20harmful,disease%2C%20a%20rare%20genetic%20 disorder.
[4] Heavy metals in the Mississippi River. Contaminants in the Mississippi River--Heavy Metals in the Mississippi River. (n.d.). https://pubs.usgs.gov/circ/circ1133/ heavy-metals.html
[5] Chang, L., Cao, Y., Peng, W., Miao, Y., Fan, G., Li, C., … Song, X. (2021). Enhancing the ion flotation removal of Cu(Ⅱ) via regulating the oxidation degree of nano collector-graphene oxide. Journal of Cleaner Production, 295, 126397. doi:10.1016/j.jclepro.2021.126397
[6] Hornn, V., Park, I., Ito, M., Shimada, H., Suto, T., Tabelin, C. B., … Hiroyoshi, N. (2021). Agglomeration-flotation of finely ground chalcopyrite using surfactant-stabilized oil emulsions: Effects of co-existing minerals and ions. Minerals Engineering, 171, 107076. doi:10.1016/ j.mineng.2021.107076
[7] Wu Y, Zhang L, Gao C, Ma J, Ma X, Han R (2009) Adsorption of copper ions and methylene blue in a single and binary system on wheat straw. J Chem Eng Data 54:3229–
[8] Zheng W, X-m L, Yang Q, G-m Z, Shen X-x, Zhang Y, J-j L (2007) Adsorption of Cd (II) and Cu (II) from aqueous solution by carbonate hydroxylapatite derived from eggshell waste. J Hazard Mater 147:534–539
[9] Sadegh H, Ali GA, Gupta VK, Makhlouf ASH, Shahryari-ghoshekandi R, Nadagouda MN, Sillanpää M, Megiel E (2017) The role of nanomaterials as effective adsorbents and their applications in wastewater treatment. J Nanostruct Chem 7:1–14
[10] Manyangadze M, Chikuruwo N, Narsaiah T, Chakra C, Radhakumari M, Danha G (2020) Enhancing adsorption capacity of nano-adsorbents via surface modification: a review. S Afr J Chem Eng 31:25–32
[11] Xin X, Wei Q, Yang J, Yan L, Feng R, Chen G, Du B, Li H (2012) Highly efficient removal of heavy metal ions by aminefunctionalized mesoporous Fe3O4 nanoparticles. Chem Eng J 184: 132–140
[12] Wu, C. H. (2007). Studies of the equilibrium and thermodynamics of the adsorption of Cu2+ onto as-produced and modified carbon nanotubes. J. Colloid Interface Sci, 311, 338–346.
[13] Rao, M. M., Ramana, D. K., Seshaiah, K., Wang, M. C., & Chien, S. W. C. (2009). Removal of some metal ions by activated carbon prepared from Phaseolus aureushulls. J. Hazard. Mater, 166, 1006–1013.
[14] Ahmad, A., Rafatullah, M., Sulaiman, O., Ibrahim, M. H., Chii, Y. Y., & Siddique, B. M. (2009). Removal of Cu(II) and Pb(II) ions from aqueous solutions by adsorption on sawdust of Meranti wood. Desalination, 247(1–3), 636–646. doi:10.1016/j.desal.2009.01.007
[15] Sljivic, M., Smiciklas, I., Pejanovic, S., & Plecas, I.
[2009] . Comparative study of Cu2+ adsorption on a zeolite, a clay and a diatomite from Serbia. Applied Clay Science, 43(1), 33–40. doi:10.1016/j.clay.2008.07.009
[16] Xanthopoulos, P., Kalebić, D., Kamariah, N., Bussé, J., Dehaen, W., Spooren, J., & Binnemans, K. (2021). Recovery of copper from ammoniacal leachates by ion flotation. Journal of Sustainable Metallurgy, 7(4), 1552–1564. doi:10.1007/s40831-021-00363-1
[17] Pooja, G., Kumar, P. S., Prasannamedha, G., Varjani, S., & Vo, D. N. (2021). Sustainable approach on removal of toxic metals from electroplating industrial wastewater using dissolved air flotation. Journal of environmental management, 295, 113147. https://doi.org/10.1016/j.jen- Dean&Francis vman.2021.113147
[18] Stoica, L., Stanescu, A., Constantin, C., Oprea, O., & Bacioiu, G. (2015). Removal of Copper(II) from Aqueous Solutions by Biosorption-Flotation. Water, Air, & Soil Pollution, 226. doi:10.1007/s11270-015-2533-0
[19] Hu, N., Liu, W., Jin, L., Li, Y., Li, Z., Liu, G., … Yin, H. (2017). Recovery of trace Cu2+ using a process of nano-adsorption coupled with flotation: SNP as an adsorbing carrier. Separation and Purification Technology, 184, 257–263. doi:10.1016/j.seppur.2017.05.009
[20] Stoica, L., & Lacatusu, I. (2012). Cu(II) separation from diluted aqueous solutions by flotation with atypical collectors anti and syn 2-hydroxy-3,5-di-tert-butyl-benzaldoxime. International Journal of Environment and Waste Management, 9(3–4), 293–312. doi:10.1504/ IJEWM.2012.046394
[21] Strel’tsov, K. A., & Abryutin, D. V. (2010). Investigation of regularities of ion flotation of copper with the use of sodium diethyldithiocarbamate. Russian Journal of Non-Ferrous Metals, 51(2), 85–88. doi:10.3103/ S106782121002001X
[22] Lazaridis, N. K., Peleka, E. N., Karapantsios, T. D., & Matis, K. A. (2004). 59 L. Stoica and I. Lacatusu. Int. J. Environ. Waste Manage, 74.
[23] Magnenet, C., Jurin, F. E., Lakard, S., Buron, C. C., & Lakard, B. (2013). Polyelectrolyte modification of ultrafiltration membrane for removal of copper ions. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 435, 170-177.
[24] Qasem, N. A., Mohammed, R. H., & Lawal, D. U.
[2021] . Removal of heavy metal ions from wastewater: A comprehensive and critical review. Npj Clean Water, 4(1), 36.
[25] Fu, F., & Wang, Q. (2011). Removal of heavy metal ions from wastewaters: a review. Journal of environmental management, 92(3), 407-418.
[26] Lee, K. P., Arnot, T. C., & Mattia, D. (2011). A review of reverse osmosis membrane materials for desalination— Development to date and future potential. Journal of Membrane Science, 370(1-2), 1-22.
[27] Nazif, A., Karkhanechi, H., Saljoughi, E., Mousavi, S. M., & Matsuyama, H. (2022). Recent progress in membrane development, affecting parameters, and applications of reverse electrodialysis: A review. Journal of Water Process Engineering, 47, 102706.
[28] Naohide T, Yukio M, Masataka Y, Shin-Ichi W, Sahori T, Zyun S, et al. J Jpn Soc Water Environ 1998;21:47.
[29] Kobya M, Demirbasb E, Dedelia A, Sensoya MT. J Hazard Mater 2010;173:326.
[30] Kasbefialasl M, Khorsavi M, Marandi R, Seyyedi K. Int J Sci Technol 2006;2:365.
[31] Nanseu-Nikki CP, Tchamango SR, Ngom PC, Darchen A, Ngameni E. J Hazard Mater 2009;168:1430.
[32] Kabdash T, Arslan, Olmez-Hanc T, Arslan-Alaton I, Tunay O. J Hazard Mater 2009;165:838.
[33] Shafaei, Rezayee M, Arami M, Nikazar M. Desalination 2010;260:23.
[34] Liu, C., Wu, T., Hsu, P.-C., Xie, J., Zhao, J., Liu, K., Sun, J., Xu, J., Tang, J., Ye, Z., Lin, D., & Cui, Y.
[2019] . Direct/alternating current electrochemical method for removing and recovering heavy metal from water using graphene oxide electrode. ACS Nano, 13(6), 6431–
[6437] https://doi.org/10.1021/acsnano.8b09301
[35] Saleh, T. A., Mustaqeem, M., & Khaled, M. (2022). Water treatment technologies in removing heavy metal ions from wastewater: A review. Environmental Nanotechnology, Monitoring & Management, 17, 100617.
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