References

  1. M.B. Shakoor, S. Ali, M. Rizwan, F. Abbas, I. Bibi, M. Riaz, U. Khalil, N.K. Niazi, J. Rinklebe, A review of biochar-based sorbents for separation of heavy metals from water, Int. J. Phytorem., 22 (2020) 111–126.
  2. Y. Dong, D. Sang, C. He, X. Sheng, L. Lei, Mxene/alginate composites for lead and copper ion removal from aqueous solutions, RSC Adv., 50 (2019) 29015–29022.
  3. S. Rajendran, A.K. Priya, P.S. Kumar, T.K.A. Hoang, K. Sekar, K.Y. Chong, K.S. Khoo, H.S. Ng, P.L. Show, A critical and recent developments on adsorption technique for removal of heavy metals from wastewater, Chemosphere, 3030 (2022) 135146, doi: 10.1016/j.chemosphere.2022.135146.
  4. N. Ali, A. Khan, S. Malik, S. Badshah, M. Bilal, H.M.N. Iqbal, Chitosan-based green sorbent material for cations removal from an aqueous environment, J. Environ. Chem. Eng., 8 (2020) 104064, doi: 10.1016/j.jece.2020.104064.
  5. I. Zahara, M. Arshad, M. Anne Naeth, T. Siddique, A. Ullah, Feather keratin derived sorbents for the treatment of wastewater produced during energy generation processes, Chemosphere, 273 (2021) 128545, doi: 10.1016/j.chemosphere.2020.128545.
  6. L. Pan, Z. Wang, X. Zhao, H. He, Efficient removal of lead and copper ions from water by enhanced strength-toughness alginate composite fibers, Int. J. Biol. Macromol., 134 (2019) 223–229.
  7. M.R. Khan, S.M. Wabaidur, R. Busquets, M.A. Khan, M.R. Siddiqui, M. Azam, Identification of malachite green in industrial wastewater using lignocellulose biomass composite bio-sorbent and UPLC-MS/MS: a green environmental approach, Process Saf. Environ. Prot., 126 (2019) 160–166.
  8. M. Tavana, H. Pahlavanzadeh, M.J. Zarei, The novel usage of dead biomass of green algae of Schizomeris leibleinii for biosorption of copper(II) from aqueous solutions: equilibrium, kinetics and thermodynamics, J. Environ. Chem. Eng., 8 (2020) 104272, doi: 10.1016/j.jece.2020.104272.
  9. A. Gul, N.G. Khaligh, N.M. Julkapli, Surface modification of carbon-based nanoadsorbents for the advanced wastewater treatment, J. Mol. Struct., 1235 (2021) 130148, doi: 10.1016/j.molstruc.2021.130148.
  10. A. Benettayeb, F.Z. Seihoub, P. Pal, S. Ghosh, M. Usman, C.H. Chia, M. Usman, M. Sillanpää, Chitosan nanoparticles as potential nano-sorbent for removal of toxic environmental pollutants, Nanomaterials, 13 (2023) 447, doi: 10.3390/nano13030447.
  11. A. Saleem, J. Wang, T. Sun, F. Sharaf, M. Haris, S. Lei, Enhanced and selective adsorption of copper ions from acidic conditions by diethylenetriaminepentaacetic acid-chitosan sewage sludge composite, J. Environ. Chem. Eng., 8 (2020) 104430, doi: 10.1016/j.jece.2020.104430.
  12. H. Musarurwa, N.T. Tavengwa, Application of carboxymethyl polysaccharides as bio-sorbents for the sequestration of heavy metals in aquatic environments, Carbohydr. Polym., 237 (2020) 116142, doi: 10.1016/j.carbpol.2020.116142.
  13. D. Humelnicu, E.S. Dragan, M. Ignat, M.V. Dinu, A comparative study on Cu2+, Zn2+, Ni2+, Fe3+, and Cr3+ metal ions removal from industrial wastewaters by chitosan-based composite cryogels, Molecules, 25 (2020) 2664, doi: 10.3390/molecules25112664.
  14. A. Khan, N. Ali, M. Bilal, S. Malik, S. Badshah, H.M.N. Iqbal, Engineering functionalized chitosan-based sorbent material: characterization and sorption of toxic elements, Appl. Sci., 9 (2019) 5138, doi: 10.3390/app9235138.
  15. Z.U. Khan, W.U. Khan, B. Ullah, W. Ali, B. Ahmad, P.-S. Yap, Graphene oxide/PVC composite papers functionalized with p-phenylenediamine as high-performance sorbent for the removal of heavy metal ions, J. Environ. Chem. Eng., 9 (2021) 105916, doi: 10.1016/j.jece.2021.105916.
  16. M. Ghorbani, O. Seyedin, M. Aghamohammadhassan, Adsorptive removal of lead(II) ion from water and wastewater media using carbon-based nanomaterials as unique sorbents, J. Environ. Manage., 254 (2020) 109814, doi: 10.1016/j.jenvman.2019.109814.
  17. R.O. Adeeyo, J.N. Edokpayi, O.S. Bello, A.O. Adeeyo, J.O. Odiyo, Influence of selective conditions on various composite sorbents for enhanced removal of copper(II) ions from aqueous environments, Int. J. Environ. Res. Public Health, 16 (2019) 4596, doi: 10.3390/ijerph16234596.
  18. S. Nawaz, A. Tabassum, S. Muslim, T. Nasreen, A. Baradoke, T.H. Kim, G. Boczkaj, T. Jesionowski, M. Bilal, Effective assessment of biopolymer-based multifunctional sorbents for the remediation of environmentally hazardous contaminants from aqueous solutions, Chemosphere, 329 (2023) 138552, doi: 10.1016/j.chemosphere.2023.138552.
  19. N. Fiol, M.G. Vásquez, M. Pereira, Q. Tarrés, P. Mutjé, M. Delgado-Aguilar, TEMPO-oxidized cellulose nanofibers as potential Cu(II) adsorbent for wastewater treatment, Cellulose, 26 (2019) 903–916.
  20. A.M. Elgarahy, K.Z. Elwakeel, S.H. Mohammad, G.A. Elshoubaky, Multifunctional eco-friendly sorbent based on marine brown algae and bivalve shells for subsequent uptake of Congo red dye and copper(II) ions, J. Environ. Chem. Eng., 8 (2020) 103915, doi: 10.1016/j.jece.2020.103915.
  21. G. Franchin, J. Pesonen, T. Luukkonen, C. Bai, P. Scanferla, R. Botti, S. Carturan, M. Innocentini, P. Colombo, Removal of ammonium from wastewater with geopolymer sorbents fabricated via additive manufacturing, Mater. Des., 195 (2020) 109006, doi: 10.1016/j.matdes.2020.109006.
  22. K. Mazurek, S. Drużyński, U. Kiełkowska, A. Bielicka, J. Gluzińska, Application of sulphate and magnesium enriched waste rapeseed cake biochar for recovery of Cu(II) and Zn(II) from industrial wastewater generated in sulphuric acid plants, Hydrometallurgy, 216 (2023) 106014, doi: 10.1016/j.hydromet.2022.106014.
  23. N.A. Ibrahim, F.H.H. Abdellatif, M.S. Hasanin, M.M. Abdellatif, Fabrication, characterization, and potential application of modified sawdust sorbents for efficient removal of heavy metal ions and anionic dye from aqueous solutions, J. Cleaner Prod., 332 (2022) 130021, doi: 10.1016/j.jclepro.2021.130021.
  24. I. Uogintė, G. Lujanienė, K. Mažeika, Study of Cu(II), Co(II), Ni(II) and Pb(II) removal from aqueous solutions using magnetic Prussian blue nano-sorbent, J. Hazard. Mater., 369 (2019) 226–235.
  25. M. Wang, Q. Yang, X. Zhao, Z. Wang, Highly efficient removal of copper ions from water by using a novel alginatepolyethyleneimine hybrid aerogel, Int. J. Biol. Macromol., 138 (2019) 1079–1086.
  26. A.A.H. Faisal, M.B. Abdul-Kareem, A.K. Mohammed, Mu. Naushad, A.A. Ghfar, T. Ahamad, Humic acid coated sand as a novel sorbent in permeable reactive barrier for environmental remediation of groundwater polluted with copper and cadmium ions, J. Water Process Eng., 36 (2020) 101373, doi: 10.1016/j.jwpe.2020.101373.
  27. P. Shao, Z. Chang, M. Li, X. Lu, W. Jiang, K. Zhang, X. Luo, L. Yang, Mixed-valence molybdenum oxide as a recyclable sorbent for silver removal and recovery from wastewater, Nat. Commun., 14 (2023) 1365, doi: 10.1038/s41467-023-37143-2.
  28. N. Yang, R. Wang, P. Rao, L. Yan, W. Zhang, J. Wang, F. Chai, The fabrication of calcium alginate beads as a green sorbent for selective recovery of Cu(Ⅱ) from metal mixtures, Crystals, 9 (2019) 255, doi: 10.3390/cryst9050255.
  29. M.N. Yazdi, S. Dadfarnia, A.M.H. Shabani, Synthesis of stable S-functionalized metal-organic framework using MoS4 2– and its application for selective and efficient removal of toxic heavy metal ions in wastewater treatment, J. Environ. Chem. Eng., 9 (2021) 104696, doi: 10.1016/j.jece.2020.104696.
  30. D. Humelnicu, M.M. Lazar, M. Ignat, I.A. Dinu, E.S. Dragan, M.V. Dinu, Removal of heavy metal ions from multi-component aqueous solutions by eco-friendly and low-cost composite sorbents with anisotropic pores, J. Hazard. Mater., 381 (2020) 120980, doi: 10.1016/j.jhazmat.2019.120980.
  31. Y. Cai, Y. Jiang, L. Feng, Y. Hua, H. Liu, C. Fan, M. Yin, S. Li, X. Lv, H. Wang, Q-graphene-scaffolded covalent organic frameworks as fluorescent probes and sorbents for the fluorimetry and removal of copper ions, Anal. Chim. Acta, 1057 (2019) 88–97.
  32. M. Petrović, T. Šoštarić, M. Stojanović, J. Petrović, M. Mihajlović, A. Ćosović, S. Stanković, Mechanism of adsorption of Cu2+ and Zn2+ on the corn silk (Zea mays L.), Ecol. Eng., 99 (2017) 83–90.
  33. M. Simić, J. Petrović, T. Šoštarić, M. Ercegović, J. Milojković, Z. Lopičić, M. Kojić, A mechanism assessment and differences of cadmium adsorption on raw and alkali-modified agricultural waste, Processes, 10 (2022) 1957, doi: 10.3390/pr10101957.
  34. S. Deng, R. Bai, J.P. Chen, Behaviors and mechanisms of copper adsorption on hydrolyzed polyacrylonitrile fibers, J. Colloid Interface Sci., 260 (2013) 265–272.
  35. J. Paul Chen, S. Wu, K.-H. Chong, Surface modification of a granular activated carbon by citric acid for enhancement of copper adsorption, Carbon, 41 (2013) 1979–1986.
  36. E.R. Mouta, M.R. Soares, J.C. Casagrande, Copper adsorption as a function of solution parameters of variable charge soils, J. Braz. Chem. Soc., 19 (2008) 996–1009.
  37. M. Ajmal, A.H. Khan, S. Ahmad, A. Ahmad, Role of sawdust in the removal of copper(II) from industrial wastes, Water Res., 32 (1998) 3085–3091.