References

  1. K.Y. Foo, B.H. Hameed, An overview of dye removal via activated carbon adsorption process, Desal. Water Treat., 19 (2010) 255–274.
  2. A. Mittal, J. Mittal, A. Malviya, D. Kaur, V.K. Gupta, Adsorption of hazardous dye crystal violet from wastewater by waste materials, J. Colloid Interface Sci., 343 (2010) 463–473.
  3. M.A. Khan, Momina, M.R. Siddiqui, M. Otero, S.A. Alshareef, M. Rafatullah, Removal of rhodamine B from water using a solvent impregnated polymeric dowex 5WX8 resin: statistical optimization and batch adsorption studies, Polymers (Basel), 12 (2020) 500, doi: 10.3390/polym12020500.
  4. U. Filipkowska, E. Klimiuk, S. Grabowski, E. Siedlecka, Adsorption of reactive dyes by modified chitin from aqueous solutions, Pol. J. Environ. Stud., 11 (2002) 315–323.
  5. A.M. Aljeboree, A.F. Alkaim, A.H. Al-Dujaili, Adsorption isotherm, kinetic modeling and thermodynamics of crystal violet dye on coconut husk-based activated carbon, Desal. Water Treat., 53 (2014) 3656–3667.
  6. P. Kaur, A.P. Singh, A.K. Prince, J.P. Kushwaha, Optimization and evaluation of CBSOL LE red wool dye adsorption from aqueous solution onto commercial activated carbon, Int. J. Environ. Sci. Technol., 12 (2014) 3755–3766.
  7. A.A. Alqadami, M.A. Khan, M. Otero, M.R. Siddiqui, B.H. Jeon, K.M. Batoo, A magnetic nanocomposite produced from camel bones for an efficient adsorption of toxic metals from water, J. Cleaner Prod., 178 (2018) 293–304.
  8. H. Xu, B. Yang, Y.B. Liu, F. Li, C.S. Shen, C.Y. Ma, Q. Tian, X.S. Song, W.G. Sand, Recent advances in anaerobic biological processes for textile printing and dyeing wastewater treatment: a mini-review, World J. Microbiol. Biotechnol., 34 (2018) 165, doi: 10.1007/s11274-018-2548-y.
  9. S. Figueroa, L. Vázquez, A. Alvarez-Gallegos, Decolorizing textile wastewater with Fenton’s reagent electrogenerated with a solar photovoltaic cell, Water Res., 43 (2009) 283–294.
  10. R.M. Simmons, S.M.R. Smith, M.P. Osborne, Methylene blue dye as an alternative to isosulfan blue dye for sentinel lymph node localization, Breast J., 7 (2001) 181–183.
  11. S.D. Khattri, M.K. Singh, Removal of malachite green from dye wastewater using neem sawdust by adsorption, J. Hazard. Mater., 167 (2009) 1089–1094.
  12. S. Papić, N. Koprivanac, A. Lončarić Božić, Removal of reactive dyes from wastewater using Fe(III) coagulant, Color. Technol., 116 (2000) 352–358.
  13. H.M. Zou, W.Z. Ma, Y. Wang, A novel process of dye wastewater treatment by linking advanced chemical oxidation with biological oxidation, Arch. Environ. Prot., 41 (2015) 33–39.
  14. S.H. Lin, C.C. Lo, Treatment of textile wastewater by foam flotation, Environ. Technol., 17 (1996) 841–849.
  15. M.F. Abid, M.A. Zablouk, A.M. Abid-Alameer, Experimental study of dye removal from industrial wastewater by membrane technologies of reverse osmosis and nanofiltration, Iran. J. Environ. Health Sci. Eng., 9 (2012) 17, doi: 10.1186/1735-2746-9-17.
  16. M.M. Hassan, C.M. Carr, A critical review on recent advancements of the removal of reactive dyes from dyehouse effluent by ion-exchange adsorbents, Chemosphere, 209 (2018) 201–219.
  17. T. Hudaya, J. Anthonios, E. Septianto, UV/Fenton photooxidation of Drimarene Dark Red (DDR) containing textile-dye wastewater, IOP Conf. Ser.: Mater. Sci. Eng., 162 (2016) 012022.
  18. Y. Xiong, P.J. Strunk, H.Y. Xia, X.H. Zhu, H.T. Karlsson, Treatment of dye wastewater containing acid orange II using a cell with three-phase three-dimensional electrode, Water Res., 35 (2001) 4226–4230.
  19. K. Pakshirajan, S. Kheria, Continuous treatment of coloured industry wastewater using immobilized Phanerochaete chrysosporium in a rotating biological contactor reactor, J. Environ. Manage., 101 (2012) 118–123.
  20. S. Şen, G. Demirer, Anaerobic treatment of real textile wastewater with a fluidized bed reactor, Water Res., 37 (2003) 1868–1878.
  21. E.-R. Kenawy, A.A. Ghfar, S.M. Wabaidur, M.A. Khan, M.R. Siddiqui, Z.A. Alothman, A.A. Alqadami, M. Hamid, Cetyltrimethylammonium bromide intercalated and branched polyhydroxystyrene functionalized montmorillonite clay to sequester cationic dyes, J. Environ. Manage., 219 (2018) 285–293.
  22. S.M. Wabaidur, M.A. Khan, M.R. Siddiqui, M. Otero, B.-H. Jeon, Z.A. Alothman, A.A.H. Hakami, Oxygenated functionalities enriched MWCNTs decorated with silica coated spinel ferrite – a nanocomposite for potentially rapid and efficient de-colorization of aquatic environment, J. Mol. Liq., 317 (2020) 113916, doi: 10.1016/j.molliq.2020.113916.
  23. S. Bagheri, M. Ghaedi, A. Asfaram, E.A. Dil, H. Javadian, RSMCCD design of malachite green adsorption onto activated carbon with multimodal pore size distribution prepared from Amygdalus scoparia: kinetic and isotherm studies, Polyhedron, 171 (2019) 464–472.
  24. M.A. Khan, B.H. Hameed, J. Lawler, M. Kumar, B.H. Jeon, Developments in activated functionalized carbons and their applications in water decontamination: a review, Desal. Water Treat., 54 (2015) 422–449.
  25. Mu. Naushad, M.A. Khan, Z.A. Alothman, M.R. Khan, M. Kumar, Adsorption of methylene blue on chemically modified pine nut shells in single and binary systems: isotherms, kinetics, and thermodynamic studies, Desal. Water Treat., 57 (2016) 15848–15861.
  26. M.A. Khan, Z.A.A. Othman, M. Kumar, M.S. Ola, M.R. Siddique, Biosorption potential assessment of modified pistachio shell waste for methylene blue: thermodynamics and kinetics study, Desal. Water Treat., 56 (2015) 146–160.
  27. A.B. Pérez-Marín, V.M. Zapata, J.F. Ortuño, M. Aguilar, J. Sáez, M. Lloréns, Removal of cadmium from aqueous solutions by adsorption onto orange waste, J. Hazard. Mater., 139 (2007) 122–131.
  28. M. Kousha, S. Tavakoli, E. Daneshvar, A. Vazirzadeh, A. Bhatnagar, Central composite design optimization of Acid Blue 25 dye biosorption using shrimp shell biomass, J. Mol. Liq., 207 (2015) 266–273.
  29. S. Bajpai, S.K. Gupta, A. Dey, M.K. Jha, V. Bajpai, S. Joshi, A. Gupta, Application of central composite design approach for removal of chromium(VI) from aqueous solution using weakly anionic resin: modeling, optimization, and study of interactive variables, J. Hazard. Mater., 227–228 (2012) 436–444.
  30. G.E.P. Box, D.W. Behnken, Some new three level designs for the study of quantitative variables, Technometrics, 2 (1960) 455–475.
  31. K.D. Daniel, J.A. Ritter, Equilibrium theory analysis of a pressure-swing adsorption cycle utilizing an unfavorable Langmuir isotherm. 2. Approach to periodic behavior, Ind. Eng. Chem. Res., 42 (2003) 3381–3390.
  32. P. Kowalczyk, A.P. Terzyk, P.A. Gauden, R. Leboda, E. Szmechtig-Gauden, G. Rychlicki, Z.Y. Ryu, H. Rong, Estimation of the pore-size distribution function from the nitrogen adsorption isotherm. Comparison of density functional theory and the method of Do and co-workers, Carbon, 41 (2003) 1113–1125.
  33. A. Arami-Niya, W.M.A.W. Daud, F.S. Mjalli, F. Abnisa, M.S. Shafeeyan, Production of microporous palm shell based activated carbon for methane adsorption: modeling and optimization using response surface methodology, Chem. Eng. Res. Des., 90 (2012) 776–784.
  34. G.I. Danmaliki, T.A. Saleh, A.A. Shamsuddeen, Response surface methodology optimization of adsorptive desulfurization on nickel/activated carbon, Chem. Eng. J., 313 (2017) 993–1003.
  35. S. Uçar, M. Erdem, T. Tay, S. Karagöz, Preparation and characterization of activated carbon produced from pomegranate seeds by ZnCl2 activation, Appl. Surf. Sci., 255 (2009) 8890–8896.
  36. Q. Lu, Z. Wang, C.-Q. Dong, Z.-F. Zhang, Y. Zhang, Y.-P. Yang, X.-F. Zhu, Selective fast pyrolysis of biomass impregnated with ZnCl2: furfural production together with acetic acid and activated carbon as by-products, J. Anal. Appl. Pyrolysis, 91 (2011) 273–279.
  37. W.T. Tsai, C.Y. Chang, M.C. Lin, S.F. Chien, H.F. Sun, M.F. Hsieh, Adsorption of acid dye onto activated carbons prepared from agricultural waste bagasse by ZnCl2 activation, Chemosphere, 45 (2001) 51–58.
  38. K. Mohanty, D. Das, M.N. Biswas, Adsorption of phenol from aqueous solutions using activated carbons prepared from Tectona grandis sawdust by ZnCl2 activation, Chem. Eng. J., 115 (2005) 121–131.
  39. Q.F. Yu, H.R. Zhao, H. Zhao, S.N. Sun, X. Ji, M. Li, Y.F. Wang, Preparation of tobacco-stem activated carbon from using response surface methodology and its application for water vapor adsorption in solar drying system, Sol. Energy, 177 (2019) 324–336.
  40. S.M. Praveena, U. Rashid, S.A. Rashid, Application of activated carbon from banana stem waste for removal of heavy metal ions in greywater using a Box–Behnken design approach, Environ. Technol., 41 (2020) 3363–3374.
  41. A.C. Lua, J. Guo, Activated carbon prepared from oil palm stone by one-step CO2 activation for gaseous pollutant removal, Carbon, 38 (2000) 1089–1097.
  42. J.N. Sahu, J. Acharya, B.C. Meikap, Optimization of production conditions for activated carbons from tamarind wood by zinc chloride using response surface methodology, Bioresour. Technol., 101 (2010) 1974–1982.