References

  1. L. Cai, D. Ying, X. Liang, M. Zhu, X. Lin, Q. Xu, Z. Cai, X. Xu, N. Na, A novel cationic polyelectrolyte microsphere for ultrafast and ultra-efficient removal of heavy metal ions and dyes, Chem. Eng. J., 410 (2021) 128404, doi: 10.1016/j.cej.2021.128404.
  2. F.S.A. Khan, N.M. Mubarak, Y.H. Tan, M. Khalid, R.R. Karri, R. Walvekar, E.C. Abdullah, S. Nizamuddin, S.A. Mazari, A comprehensive review on magnetic carbon nanotubes and carbon nanotube-based buckypaper for removal of heavy metals and dyes, J. Hazard. Mater., 413 (2021) 125375, doi: 10.1016/j.jhazmat.2021.125375.
  3. I. Kariim, A.S. Abdulkareem, J.O. Tijani, O.K. Abubakre, Development of MWCNTs/TiO2 nanoadsorbent for simultaneous removal of phenol and cyanide from refinery wastewater, Sci. Afr., 10 (2020) e00593, doi: 10.1016/j.sciaf.2020.e00593.
  4. M. Chen, R. Bi, R. Zhang, F. Yang, F. Chen, Tunable surface charge and hydrophilicity of sodium polyacrylate intercalated layered double hydroxide for efficient removal of dyes and heavy metal ions, Colloids Surf., A, 617 (2021) 126384, doi: 10.1016/j.colsurfa.2021.126384.
  5. J. Feng, S. Xiong, L. Ren, Y. Wang, Atomic layer deposition of TiO2 on carbon-nanotubes membrane for capacitive deionization removal of chromium from water, Chin. J. Chem. Eng., 45 (2022) 15–21.
  6. H.-T. Hsu, S.-S. Chen, Y.-S. Chen, Removal of chromium(VI) and naphthalenesulfonate from textile wastewater by photocatalysis combining ionic exchange membrane processes, Sep. Purif. Technol., 80 (2011) 663–669.
  7. S.S. Kerur, S. Bandekar, M.S. Hanagadakar, S.S. Nandi, G.M. Ratnamala, P.G. Hegde, Removal of hexavalent chromium-industry treated water and wastewater: a review, Mater. Today Proc., 42 (2021) 1112–1121.
  8. X. Ren, S. Wang, Y. Jin, D. Xu, H. Yin, Adsorption properties of reactive dyes on the activated carbon from corn straw prepared by microwave pyrolysis, Desal. Water Treat., 200 (2020) 296–303.
  9. S. Ayub, A.A. Mohammadi, M. Yousefi, F. Changani, Performance evaluation of agro-based adsorbents for the removal of cadmium from wastewater, Desal. Water Treat., 142 (2019) 293–299.
  10. M. Gaikwad, C. Balomajumder, Removal of Cr(VI) and fluoride by membrane capacitive deionization with nanoporous and microporous Limonia acidissima (wood apple) shell activated carbon electrode, Sep. Purif. Technol., 195 (2018) 305–313.
  11. S. Lal, A. Singhal, P. Kumari, Exploring carbonaceous nanomaterials for arsenic and chromium removal from wastewater, J. Water Process Eng., 36 (2020) 101276, doi: 10.1016/j.jwpe.2020.101276.
  12. Y. Zhao, L. Li, Y. Zuo, G. He, Q. Chen, Q. Meng, H. Chen, Reduced graphene oxide supported ZnO/CdS heterojunction enhances photocatalytic removal efficiency of hexavalent chromium from aqueous solution, Chemosphere, 286 (2022) 131738, doi: 10.1016/j.chemosphere.2021.131738.
  13. A. Othmani, S. Magdouli, P. Senthil Kumar, A. Kapoor, P.V. Chellam, Ö. Gökkuş, Agricultural waste materials for adsorptive removal of phenols, chromium(VI) and cadmium(II) from wastewater: a review, Environ. Res., 204 (2022) 111916, doi: 10.1016/j.envres.2021.111916.
  14. D. Huang, C. Liu, C. Zhang, R. Deng, R. Wang, W. Xue, H. Luo, G. Zeng, Q. Zhang, X. Guo, Cr(VI) removal from aqueous solution using biochar modified with Mg/Al-layered double hydroxide intercalated with ethylenediaminetetraacetic acid, Bioresour. Technol., 276 (2019) 127–132.
  15. B. Thangagiri, A. Sakthivel, K. Jeyasubramanian, S. Seenivasan, J. Dhaveethu Raja, K. Yun, Removal of hexavalent chromium by biochar derived from Azadirachta indica leaves: batch and column studies, Chemosphere, 286 (2022) 131598, doi: 10.1016/j.chemosphere.2021.131598.
  16. C. Zhang, K. Cai, Q. Feng, Y. Xu, Z. Zhang, Chromium(VI) promotes cell migration through targeting epithelialmesenchymal transition in prostate cancer, Toxicol. Lett., 300 (2019) 10–17.
  17. G.D. Değermenci, N. Değermenci, V. Ayvaoğlu, E. Durmaz, D. Çakır, E. Akan, Adsorption of reactive dyes on lignocellulosic waste; characterization, equilibrium, kinetic and thermodynamic studies, J. Cleaner Prod., 225 (2019) 1220–1229.
  18. A.H. Jawad, R.A. Rashid, M.A.M. Ishak, L.D. Wilson, Adsorption of methylene blue onto activated carbon developed from biomass waste by H2SO4 activation: kinetic, equilibrium and thermodynamic studies, Desal. Water Treat., 57 (2016) 25194–25206.
  19. Y. Rashtbari, S. Afshin, A. Hamzezadeh, M. Abazari, Y. Poureshgh, M. Fazlzadeh, Application of powdered activated carbon coated with zinc oxide nanoparticles prepared using a green synthesis in removal of Reactive Blue 19 and Reactive Black-5: adsorption isotherm and kinetic models, Desal. Water Treat., 179 (2020) 354–367.
  20. M.L. Parisi, E. Fatarella, D. Spinelli, R. Pogni, R. Basosi, Environmental impact assessment of an eco-efficient production for coloured textiles, J. Cleaner Prod., 108 (2015) 514–524.
  21. S.C.M. Signorelli, J.M. Costa, A.F. de Almeida Neto, Electrocoagulation-flotation for orange II dye removal: kinetics, costs, and process variables effects, J. Environ. Chem. Eng., 9 (2021) 106157, doi: 10.1016/j.jece.2021.106157.
  22. K.Y. Foo, B.H. Hameed, An overview of dye removal via activated carbon adsorption process, Desal. Water Treat., 19 (2010) 255–274.
  23. M. Uygun, V. de la Asunción-Nadal, S. Evli, D.A. Uygun, B. Jurado-Sánchez, A. Escarpa, Dye removal by laccasefunctionalized micromotors, Appl. Mater. Today, 23 (2021) 101045, doi: 10.1016/j.apmt.2021.101045.
  24. J. Cai, D. Zhang, W. Xu, W.-P. Ding, Z.-Z. Zhu, J.-R. He, S.-Y. Cheng, Polysaccharide-based hydrogels derived from cellulose: the architecture change from nanofibers to hydrogels for a putative dual function in dye wastewater treatment, J. Agric. Food Chem., 68 (2020) 9725–9732.
  25. S. Samsami, M. Mohamadizaniani, M.-H. Sarrafzadeh, E.R. Rene, M. Firoozbahr, Recent advances in the treatment of dye-containing wastewater from textile industries: overview and perspectives, Process Saf. Environ. Prot., 143 (2020) 138–163.
  26. E. Misran, O. Bani, E.M. Situmeang, A.S. Purba, Removal efficiency of methylene blue using activated carbon from waste banana stem: study on pH influence, IOP Conf. Ser.: Earth Environ. Sci., 122 (2018) 012085, doi: 10.1088/1755-1315/122/1/012085.
  27. S. Saito, Y. Matsui, Y. Yamamoto, S. Matsushita, S. Mima, N. Shirasaki, T. Matsushita, Oxidative removal of soluble divalent manganese ion by chlorine in the presence of superfine powdered activated carbon, Water Res., 187 (2020) 116412, doi: 10.1016/j.watres.2020.116412.
  28. H. Shi, Q. Wang, J. Ni, Y. Xu, N. Song, M. Gao, Highly efficient removal of amoxicillin from water by three-dimensional electrode system within granular activated carbon as particle electrode, J. Water Process Eng., 38 (2020) 101656, doi: 10.1016/j.jwpe.2020.101656.
  29. M.A. Hashim, A. Kundu, S. Mukherjee, Y.-S. Ng, S. Mukhopadhyay, G. Redzwan, B. Sen Gupta, Arsenic removal by adsorption on activated carbon in a rotating packed bed, J. Water Process Eng., 30 (2019) 100591, doi: 10.1016/j.jwpe.2018.03.006.
  30. M.A. Al-Ghouti, A.O. Sweleh, Optimizing textile dye removal by activated carbon prepared from olive stones, Environ. Technol. Innovation, 16 (2019) 100488, doi: 10.1016/j.eti.2019.100488.
  31. C. Arora, P. Kumar, S. Soni, J. Mittal, A. Mittal, B. Singh, Efficient removal of malachite green dye from aqueous solution using Curcuma caesia based activated carbon, Desal. Water Treat., 195 (2020) 341–352.
  32. J. Wang, C. Chen, Chitosan-based biosorbents: modification and application for biosorption of heavy metals and radionuclides, Bioresour. Technol., 160 (2014) 129–141.
  33. A. Alahabadi, P. Singh, P. Raizada, I. Anastopoulos, S. Sivamani, G.L. Dotto, M. Landarani, A. Ivanets, G.Z. Kyzas, A. Hosseini- Bandegharaei, Activated carbon from wood wastes for the removal of uranium and thorium ions through modification with mineral acid, Colloids Surf., A, 607 (2020) 125516, doi: 10.1016/j.colsurfa.2020.125516.
  34. J. Jin, S. Li, X. Peng, W. Liu, C. Zhang, Y. Yang, L. Han, Z. Du, K. Sun, X. Wang, HNO3 modified biochars for uranium(VI) removal from aqueous solution, Bioresour. Technol., 256 (2018) 247–253.
  35. L. Dolatyari, M.R. Yaftian, S. Rostamnia, Removal of uranium(VI) ions from aqueous solutions using Schiff base functionalized SBA-15 mesoporous silica materials, J. Environ. Manage., 169 (2016) 8–17.
  36. Y. Sun, Y. Gu, P. Zhang, Adsorption properties and recognition mechanisms of a novel surface imprinted polymer for selective removal of Cu(II)-citrate complexes, J. Hazard. Mater., 424 (2022) 127735, doi: 10.1016/j.jhazmat.2021.127735.
  37. K.G. Akpomie, J. Conradie, Advances in application of cotton-based adsorbents for heavy metals trapping, surface modifications and future perspectives, Ecotoxicol. Environ. Saf., 201 (2020) 110825, doi: 10.1016/j.ecoenv.2020.110825.
  38. T.C. Egbosiuba, A.S. Abdulkareem, A.S. Kovo, E.A. Afolabi, J.O. Tijani, M. Auta, W.D. Roos, Ultrasonic enhanced adsorption of methylene blue onto the optimized surface area of activated carbon: adsorption isotherm, kinetics and thermodynamics, Chem. Eng. Res. Des., 153 (2020) 315–336.
  39. J. Kluczka, W. Pudło, K. Krukiewicz, Boron adsorption removal by commercial and modified activated carbons, Chem. Eng. Res. Des., 147 (2019) 30–42.
  40. F. Riahimanesh, A. Alahabadi, M. Baghayeri, B. Maleki, M. Miri, Investigation on the removal of entacapone from contaminated water using magnetic activated carbon, Mater. Res. Express, 6 (2019) 096105, doi: 10.1088/2053-1591/ab2ceb.
  41. N.S.M. Desa, Z.A. Ghani, S.A. Talib, C.C. Tay, Performance of spent mushroom farming waste (SMFW) activated carbon for Ni(II) removal, IOP Conf. Ser.: Mater. Sci. Eng., 136 (2016) 012059,
    doi: 10.1088/1757-899X/136/1/012059.
  42. T. Ahmad, M. Danish, Prospects of banana waste utilization in wastewater treatment: a review, J. Environ. Manage., 206 (2018) 330–348.
  43. G. Moussavi, A. Alahabadi, K. Yaghmaeian, M. Eskandari, Preparation, characterization and adsorption potential of the NH4Cl-induced activated carbon for the removal of amoxicillin antibiotic from water, Chem. Eng. J., 217 (2013) 119–128.
  44. C. Jiang, G.A. Yakaboylu, T. Yumak, J.W. Zondlo, E.M. Sabolsky, J. Wang, Activated carbons prepared by indirect and direct CO2 activation of lignocellulosic biomass for supercapacitor electrodes, Renewable Energy, 155 (2020) 38–52.
  45. N.N.A. Malek, A.H. Jawad, K. Ismail, R. Razuan, Z.A. Alothman, Fly ash modified magnetic chitosan-polyvinyl alcohol blend for Reactive Orange 16 dye removal: adsorption parametric optimization, Int. J. Biol. Macromol., 189 (2021) 464–476.
  46. T. Calvete, E.C. Lima, N.F. Cardoso, J.C.P. Vaghetti, S.L.P. Dias, F.A. Pavan, Application of carbon adsorbents prepared from Brazilian-pine fruit shell for the removal of Reactive Orange 16 from aqueous solution: kinetic, equilibrium, and thermodynamic studies, J. Environ. Manage., 91 (2010) 1695–1706.
  47. A.S. Abdulhameed, A.-T. Mohammad, A.H. Jawad, Application of response surface methodology for enhanced synthesis of chitosan tripolyphosphate/TiO2 nanocomposite and adsorption of Reactive Orange 16 dye, J. Cleaner Prod., 232 (2019) 43–56.
  48. D.D. Eslek Koyuncu, M. Okur, Removal of AV 90 dye using ordered mesoporous carbon materials prepared via nanocasting of KIT-6: adsorption isotherms, kinetics and thermodynamic analysis, Sep. Purif. Technol., 257 (2021) 117657, doi: 10.1016/j.seppur.2020.117657.
  49. B. Tu, R. Wen, K. Wang, Y. Cheng, Y. Deng, W. Cao, K. Zhang, H. Tao, Efficient removal of aqueous hexavalent chromium by activated carbon derived from Bermuda grass, J. Colloid Interface Sci., 560 (2020) 649–658.
  50. W. Wang, Chromium(VI) removal from aqueous solutions through powdered activated carbon counter-current two-stage adsorption, Chemosphere, 190 (2018) 97–102.
  51. M. Su, Y. Fang, B. Li, W. Yin, J. Gu, H. Liang, P. Li, J. Wu, Enhanced hexavalent chromium removal by activated carbon modified with micro-sized goethite using a facile impregnation method, Sci. Total Environ., 647 (2019) 47–56.
  52. M. Solgi, T. Najib, S. Ahmadnejad, B. Nasernejad, Synthesis and characterization of novel activated carbon from Medlar seed for chromium removal: experimental analysis and modeling with artificial neural network and support vector regression, Resour.-Effic. Technol., 3 (2017) 236–248.
  53. M.D. Yahya, K.S. Obayomi, M.B. Abdulkadir, Y.A. Iyaka, A.G. Olugbenga, Characterization of cobalt ferrite-supported activated carbon for removal of chromium and lead ions from tannery wastewater via adsorption equilibrium, Water Sci. Eng., 13 (2020) 202–213.
  54. D. Anitha, A. Ramadevi, R. Seetharaman, Activated Mangosteen shell in removal of mercury ion from aqueous solution, Mater. Today: Proc., 45 (2021) 658–662.
  55. R. Zakaria, N.A. Jamalluddin, M.Z. Abu Bakar, Effect of impregnation ratio and activation temperature on the yield and adsorption performance of mangrove based activated carbon for methylene blue removal, Results Mater., 10 (2021) 100183, doi: 10.1016/j.rinma.2021.100183.
  56. P. Mokhtari, M. Ghaedi, K. Dashtian, M.R. Rahimi, M.K. Purkait, Removal of methyl orange by copper sulfide nanoparticles loaded activated carbon: kinetic and isotherm investigation, J. Mol. Liq., 219 (2016) 299–305.
  57. A. Rahmani-Sani, P. Singh, P. Raizada, E. Claudio Lima, I. Anastopoulos, D.A. Giannakoudakis, S. Sivamani, T.A. Dontsova, A. Hosseini-Bandegharaei, Use of chicken feather and eggshell to synthesize a novel magnetized activated carbon for sorption of heavy metal ions, Bioresour. Technol., 297 (2020) 122452, doi: 10.1016/j.biortech.2019.122452.
  58. J.A. Kumar, P.S. Kumar, T. Krithiga, D. Prabu, D.J. Amarnath, S. Sathish, D. Venkatesan,
    A. Hosseini-Bandegharaei, P. Prashant, Acenaphthene adsorption onto ultrasonic assisted fatty acid mediated porous activated carbon-characterization, isotherm and kinetic studies, Chemosphere, 284 (2021) 131249, doi: 10.1016/j.chemosphere.2021.131249.
  59. B. Kaźmierczak, J. Molenda, M. Swat, The adsorption of chromium(III) ions from water solutions on biocarbons obtained from plant waste, Environ. Technol. Innovation, 23 (2021) 101737, doi: 10.1016/j.eti.2021.101737.
  60. K. Henryk, C. Jarosław, Ż. Witold, Peat and coconut fiber as biofilters for chromium adsorption from contaminated wastewaters, Environ. Sci. Pollut. Res., 23 (2016) 527–534.
  61. F.R. Furlan, L.G. de Melo da Silva, A.F. Morgado, A.A.U. de Souza, S.M.A. Guelli Ulson de Souza, Removal of reactive dyes from aqueous solutions using combined coagulation/flocculation and adsorption on activated carbon, Resour. Conserv. Recycl., 54 (2010) 283–290.
  62. L. Rafati, M.H. Ehrampoush, A.A. Rafati, M. Mokhtari, A.H. Mahvi, Modeling of adsorption kinetic and equilibrium isotherms of naproxen onto functionalized nano-clay composite adsorbent, J. Mol. Liq., 224 (2016) 832–841.
  63. C. Zwiener, F.H. Frimmel, Oxidative treatment of pharmaceuticals in water, Water Res., 34 (2000) 1881–1885.
  64. J. Deng, Y. Liu, H. Li, Z. Huang, X. Qin, J. Huang, X. Zhang, X. Li, Q. Lu, A novel biochar-copolymer composite for rapid Cr(VI) removal: adsorption-reduction performance and mechanism, Sep. Purif. Technol., 295 (2022) 121275, doi: 10.1016/j.seppur.2022.121275.
  65. A. Behera, S. Sahu, S. Pahi, S.K. Singh, B. Mahapatra, R.K. Patel, Polypyrrole modified zirconium(IV) phosphate nanocomposite: an effective adsorbent for Cr(VI) removal by adsorptionreduction mechanism, Mater. Chem. Phys., 290 (2022) 126540, doi: 10.1016/j.matchemphys.2022.126540.
  66. J. Saini, V.K. Garg, R.K. Gupta, N. Kataria, Removal of Orange G and Rhodamine B dyes from aqueous system using hydrothermally synthesized zinc oxide loaded activated carbon (ZnO-AC), J. Environ. Chem. Eng., 5 (2017) 884–892.
  67. F. Amran, M.A.A. Zaini, Valorization of Casuarina empty fruitbased activated carbons for dyes removal – activators, isotherm, kinetics and thermodynamics, Surf. Interfaces, 25 (2021) 101277, doi: 10.1016/j.surfin.2021.101277.
  68. H.S. Mohamed, N.K. Soliman, D.A. Abdelrheem, A.A. Ramadan, A.H. Elghandour, S.A. Ahmed, Adsorption of Cd2+ and Cr3+ ions from aqueous solutions by using residue of Padina gymnospora waste as promising low-cost adsorbent, Heliyon, 5 (2019) e01287, doi: 10.1016/j.heliyon.2019.e01287.