References

  1. E. Radaei, M.R.A. Moghaddam, M. Arami, Removal of Reactive Blue 19 from aqueous solution by pomegranate residualbased activated carbon: optimization by response surface methodology, J. Environ. Health Sci. Eng., 12 (2014) 1–8.
  2. V.C. Nguyen, Q.H. Pho, Preparation of chitosan coated magnetic hydroxyapatite nanoparticles and application for adsorption of Reactive Blue 19 and Ni2+ ions, Sci. World J., 2014 (2014) 1–9.
  3. M.R. Mafra, L. Igarashi-Mafra, D.R. Zuim, É.C. Vasques, M.A. Ferreira, Adsorption of remazol brilliant blue on an orange peel adsorbent, Braz. J. Chem. Eng., 30 (2013) 657–665.
  4. Y. Shiferaw, J.M. Yassin, A. Tedla, Removal of organic dye and toxic hexavalent chromium ions by natural clay adsorption, Desal. Water Treat., 165 (2019) 222–231.
  5. M. Dehvari, M. Ghaneian, A. Ebrahimi, B. Jamshidi, M. Mootab, Removal of Reactive Blue 19 dyes from textile wastewater by pomegranate seed powder: isotherm and kinetic studies, Int. J. Environ. Health Eng., 5 (2016) 1–9.
  6. S. Rashid, C. Shen, J. Yang, J. Liu, J. Li, Preparation and properties of chitosan–metal complex: some factors influencing the adsorption capacity for dyes in aqueous solution, J. Environ. Sci., 66 (2018) 301–309.
  7. K.C. Lai, L.Y. Lee, B.Y.Z. Hiew, S. Thangalazhy-Gopakumar, S. Gan, Environmental application of three-dimensional graphene materials as adsorbents for dyes and heavy metals: review on ice-templating method and adsorption mechanisms, J. Environ. Sci., 79 (2018) 174–199.
  8. S. Natarajan, H.C. Bajaj, R.J. Tayade, Recent advances based on the synergetic effect of adsorption for removal of dyes from waste water using photocatalytic process, J. Environ. Sci., 65 (2018) 201–222.
  9. M. Wiśniewska, M. Wawrzkiewicz, E. Polska-Adach, G. Fijałkowska, O. Goncharuk, Nanosized silica–titanium oxide as a potential adsorbent for C.I. Acid Yellow 219 dye removal from textile baths and wastewaters, Appl. Nanosci., 8 (2018) 867–876.
  10. T.Y. Kim, S.Y. Cho, Adsorption equilibria of reactive dye onto highly polyaminated porous chitosan beads, Korean J. Chem. Eng., 22 (2005) 691–696.
  11. K. Ghosh, N. Bar, A.B. Biswas, S.K. Das, Removal of Methylene Blue (aq) using untreated and acid-treated Eucalyptus leaves and GA-ANN modeling, Can. J. Chem. Eng., 97 (2019) 2883–2898.
  12. S. Farias, D. De Oliveira, A.A. Ulson De Souza, S.M.A.G.U. De Souza, A.F. Morgado, Removal of Reactive Blue 21 and Reactive Red 195 dyes using horseradish peroxidase as catalyst, Braz. J. Chem. Eng., 34 (2017) 701–707.
  13. K.M. Mousa, A.H. Taha, Adsorption of Reactive Blue dye onto natural and modified wheat straw, J. Chem. Eng. Process Technol., 6 (2015) 9.
  14. M.R. Patil, S.D. Khairnar, V.S. Shrivastava, Synthesis, characterisation of polyaniline–Fe3O4 magnetic nanocomposite and its application for removal of an acid violet 19 dye, Appl. Nanosci., 6 (2016) 495–502.
  15. M.R. Patil, V.S. Shrivastava, Adsorption of malachite green by polyaniline–nickel ferrite magnetic nanocomposite: an isotherm and kinetic study, Appl. Nanosci., 5 (2015) 809–816.
  16. K. Sharma, R.K. Vyas, A.K. Dalai, Thermodynamic and kinetic studies of Methylene Blue degradation using reactive adsorption and its comparison with adsorption, J. Chem. Eng. Data, 62 (2017) 3651–3662.
  17. M.M. Mustafa, P. Jamal, M.F. Alkhatib, S.S. Mahmod, D.N. Jimat, N.N. Ilyas, Panus tigrinus as a potential biomass source for Reactive Blue decolorization: isotherm and kinetic study, Electron. J. Biotechnol., 26 (2017) 7–11.
  18. S.A. Ahmed, L.B. Khalil, T. El-Nabarawy, Removal of Reactive Blue 19 dyes from aqueous solution using natural and modified orange peel, Carbon Lett., 13 (2012) 212–220.
  19. M.B. Mohamadi, H. Ejazi, F. Azadbakht, Using composite chitosan-graphene oxide to eliminate Reactive Blue 19 from water solutions: the study of adsorption kinetics and reaction thermodynamics, Desal. Water Treat., 155 (2019) 341–349.
  20. Y.H. Lee, S.G. Pavlostathis, Decolorization and toxicity of reactive anthraquinone textile dyes under methanogenic conditions, Water Res., 38 (2004) 1838–1852.
  21. D. Balarak, Y. Mahdavi, A. Joghatayi, The application of lowcost adsorbent for Reactive Blue 19 dye removal from aqueous solution: Lemna minor, Arch. Hyg. Sci., 4 (2015) 199–207.
  22. B. Xu, H. Zheng, H. Zhou, Y. Wang, K. Luo, C. Zhao, Y. Peng, X. Zheng, Adsorptive removal of anionic dyes by chitosanbased magnetic microspheres with pH-responsive properties, J. Mol. Liq., 256 (2018) 424–432.
  23. S. Sadri Moghaddam, M.R. Alavi Moghaddam, M. Arami, Coagulation/flocculation process for dye removal using sludge from water treatment plant: optimization through response surface methodology, J. Hazard. Mater., 175 (2010) 651–657.
  24. J.C. Edwards, Investigation of Color Removal by Chemical Oxidation for Three Reactive Textile Dyes and Spent Textile Dye Wastewater, Virginia Polytechnic Institute and State University, Environmental Science and Engineering Department, Master in Science Thesis, Blacksburg, Virginia, 2000.
  25. C. Suksaroj, M. Héran, C. Allègre, F. Persin, Treatment of textile plant effluent by nanofiltration and/or reverse osmosis for water reuse, Desalination, 178 (2005) 333–341.
  26. M. Weng, Z. Zhou, Q. Zhang, Electrochemical degradation of typical dyeing wastewater in aqueous solution: performance and mechanism, Int. J. Electrochem. Sci., 8 (2013) 290–296.
  27. R.S. Gowri, R. Vijayaraghavan, P. Meenambigai, Microbial degradation of reactive dyes-a review, Int. J. Curr. Microbiol. Appl. Sci., 3 (2014) 421–436.
  28. S. Wijannarong, S. Aroonsrimorakot, P. Thavipoke, C. Kumsopa, S. Sangjan, Removal of reactive dyes from textile dyeing industrial effluent by ozonation process, APCBEE Procedia, 5 (2013) 279–282.
  29. S. Karcher, A. Kornmüller, M. Jekel, Anion exchange resins for removal of reactive dyes from textile wastewaters, Water Res., 36 (2002) 4717–4724.
  30. E. Worch, Adsorption Technology in Water Treatment- Fundamentals, Processes and Modeling, DE GRUYTER, Germany, 2012.
  31. M.A.M. Salleh, D.K. Mahmoud, W.A.W.A. Karim, A. Idris, Cationic and anionic dye adsorption by agricultural solid wastes: a comprehensive review, Desalination, 280 (2011) 1–13.
  32. J. Xu, Z. Cao, Y. Zhang, Z. Yuan, Z. Lou, X. Xu, X. Wang, A review of functionalized carbon nanotubes and graphene for heavy metal adsorption from water: preparation, application, and mechanism, Chemosphere, 195 (2018) 351–364.
  33. Y. Peng, D. Xiao, G. Yu, Y. Feng, J. Li, X. Zhao, Y. Tang, L. Wang, Q. Zhang, Effect of an eco-friendly o/w emulsion stabilized with amphiphilic sodium alginate derivatives on lambdacyhalothrin adsorption–desorption on natural soil minerals, J. Environ. Sci., 78 (2019) 230–238.
  34. M. Mondal, K. Manoli, A.K. Ray, Removal of arsenic(III) from aqueous solution by concrete-based adsorbents, Can. J. Chem. Eng., 98 (2019) 353–359.
  35. M. Asgher, H.N. Bhatti, Removal of Reactive Blue 19 and reactive blue 49 textile dyes by citrus waste biomass from aqueous solution: equilibrium and kinetic study, Can. J. Chem. Eng., 90 (2012) 412–419.
  36. N.K. Nga, P.T.T. Hong, T.D. Lam, T.Q. Huy, A facile synthesis of nanostructured magnesium oxide particles for enhanced adsorption performance in Reactive Blue 19 removal, J. Colloid Interface Sci., 398 (2013) 210–216.
  37. M. Rafiee, M. Jahangiri-rad, Adsorption of Reactive Blue 19 from aqueous solution by carbon nanotubes:equlibrium, thermodynamics and kinetic studies, Res. J. Environ. Sci., 8 (2014) 205–2014.
  38. M.T. Ghaneian, M.H. Ehrampoush, F. Sahlabadi, M. Mootab, I. Rezapour, T. Jasemizad, Reactive Blue 19 dye adsorption behavior on jujube stems powder from synthetic textile wastewater: isotherm and kinetic adsorption studies, J. Community Health Res., 3 (2014) 67–78.
  39. M.Z. Khoshhesab, M. Ahmadi, Removal of Reactive Blue 19 from aqueous solutions using NiO nanoparticles: equilibrium and kinetic studies, Desal. Water Treat., 57 (2015) 20037–20048.
  40. M. Malakootian, H.J. Mansoorian, A. Hosseini, N. Khanjani, Evaluating the efficacy of alumina/carbon nanotube hybrid adsorbents in removing Azo Reactive Red 198 and Blue 19 dyes from aqueous solutions, Process Saf. Environ. Prot., 96 (2015) 125–137.
  41. A.A. El-Bindary, M.A. Abd El-Kawi, A.M. Hafez, I.G.A. Rashed, E.E. Aboelnaga, Removal of Reactive Blue 19 from aqueous solution using rice straw fly ash, J. Mater. Environ. Sci., 7 (2016) 1023–1036.
  42. S. Karimifard, M.R. Alavi Moghaddam, Enhancing the adsorption performance of carbon nanotubes with a multistep functionalization method: optimization of Reactive Blue 19 removal through response surface methodology, Process Saf. Environ. Prot., 99 (2016) 20–29.
  43. A. Dalvand, R. Nabizadeh, M. Reza Ganjali, M. Khoobi, S. Nazmara, A. Hossein Mahvi, Modeling of Reactive Blue 19 azo dye removal from colored textile wastewater using L-arginine-functionalized Fe3O4 nanoparticles: optimization, reusability, kinetic and equilibrium studies, J. Magn. Magn. Mater., 404 (2016) 179–189.
  44. G. Ciobanu, S. Barna, M. Harja, Kinetic and equilibrium studies on adsorption of Reactive Blue 19 dye from aqueous solutions by nanohydroxyapatite adsorbent, Arch. Environ. Prot., 42 (2016) 3–11.
  45. E. Demirhan, Removal of Reactive Blue 19 from aqueous solution by peanut shell:optimization by response surface methodology, Selcuk Univ. J. Eng., Sci. Technol., 5 (2017) 312–321.
  46. M. Abbasi, Synthesis and characterization of magnetic nanocomposite of chitosan/SiO2/carbon nanotubes and its application for dyes removal, J. Cleaner Prod., 145 (2017) 105–113.
  47. A. Banaei, S. Samadi, S. Karimi, H. Vojoudi, E. Pourbasheer, A. Badiei, Synthesis of silica gel modified with 2,2′-(hexane- 1,6-diylbis(oxy)) dibenzaldehyde as a new adsorbent for the removal of Reactive Yellow 84 and Reactive Blue 19 dyes from aqueous solutions: equilibrium and thermodynamic studies, Powder Technol., 319 (2017) 60–70.
  48. A. Azizi, E. Moniri, A.H. Hassani, H. Ahmad Panahi, M. Miralinaghi, Polymerization of graphene oxide with polystyrene: non-linear isotherms and kinetics studies of anionic dyes, Microchem. J., 145 (2019) 559–565.
  49. Y.L. Huang, D.S. Xue, P.H. Zhou, Y. Ma, F.S. Li, α-Fe-Al2O3 nanocomposites prepared by sol–gel method, Mater. Sci. Eng., A, 359 (2003) 332–337.
  50. W. Liu, W. Zhong, H. Jiang, N. Tang, X. Wu, Y. Du, Highly stable alumina-coated iron nanocomposites synthesized by wet chemistry method, Surf. Coat. Technol., 200 (2006) 5170–5174.
  51. M.F. Alajmi, J. Ahmed, A. Hussain, T. Ahamad, N. Alhokbany, S. Amir, T. Ahmad, S.M. Alshehri, Green synthesis of Fe3O4 nanoparticles using aqueous extracts of Pandanus odoratissimus leaves for efficient bifunctional electro-catalytic activity, Appl. Nanosci., 8 (2018) 1427–1435.
  52. D. Demir, D. Güreş, T. Tecim, R. Genç, N. Bölgen, Magnetic nanoparticle-loaded electrospun poly(ε-caprolactone) nanofibers for drug delivery applications, Appl. Nanosci., 8 (2018) 1461–1469.
  53. X. Ren, H. Chen, V. Yang, D. Sun, Iron oxide nanoparticle-based theranostics for cancer imaging and therapy, Front. Chem. Sci. Eng., 8 (2014) 253–264.
  54. D. Lin, L. Kong, K. Chen, J. He, T. Liu, Y. Li, X. Cai, Y. Hu, K. Zhang, J. Liu, Removal of cadmium and lead ions from water by sulfonated magnetic nanoparticle adsorbents, J. Colloid Interface Sci., 494 (2017) 307–316.
  55. K. Pandi, N. Viswanathan, In-situ fabrication of magnetic iron oxide over nano-hydroxyapatite gelatin eco-polymeric composite for defluoridation studies, J. Chem. Eng. Data, 61 (2016) 571–578.
  56. M.A. Karakassides, D. Gournis, A.B. Bourlinos, P.N. Trikalitis, T. Bakas, Magnetic Fe2O3-Al2O3 composites prepared by a modified wet impregnation method, J. Mater. Chem., 13 (2003) 871–876.
  57. M. Munoz, Z.M. de Pedro, N. Menendez, J.A. Casas, J.J. Rodriguez, A ferromagnetic γ-alumina-supported iron catalyst for CWPO. Application to chlorophenols, Appl. Catal., B, 136–137 (2013) 218–224.
  58. O.V. Makarchuk, T.A. Dontsova, I.M. Astrelin, Magnetic nanocomposites as efficient sorption materials for removing dyes from aqueous solutions, Nanoscale Res. Lett., 11 (2016) 1–7.
  59. T. Huang, M. Yan, K. He, Z. Huang, G. Zeng, A. Chen, M. Peng, H. Li, L. Yuan, G. Chen, Efficient removal of methylene blue from aqueous solutions using magnetic graphene oxide modified zeolite, J. Colloid Interface Sci., 543 (2019) 43–51.
  60. G.Z. Kyzas, K.A. Matis, Nanoadsorbents for pollutants removal: a review, J. Mol. Liq., 203 (2015) 159–168.
  61. A. Murray, B. Örmeci, Competitive effects of humic acid and wastewater on adsorption of Methylene Blue dye by activated carbon and non-imprinted polymers, J. Environ. Sci., 66 (2018) 310–317.
  62. A. Bevilacqua, M.R. Corbo, M. Sinigaglia, Design of Experiments: A Powerful Tool in Food Microbiology, A. Mendez-Vilas, Ed., Curr. Res. Technol. Educ. Top. Appl. Microbiol. Microb. Biotechnol., Ser. No.2 Vol.1, Formatex Research Center, Badajoz, Spain, 2010.
  63. M. Mäkelä, Experimental design and response surface methodology in energy applications: a tutorial review, Energy Convers. Manage., 151 (2017) 630–640.
  64. K. Ravikumar, K. Pakshirajan, T. Swaminathan, K. Balu, Optimization of batch process parameters using response surface methodology for dye removal by a novel adsorbent, Chem. Eng. J., 105 (2005) 131–138.
  65. R. Rajeshkannan, N. Rajamohan, M. Rajasimman, Removal of malachite green from aqueous solution by sorption on hydrilla verticillata biomass using response surface methodology, Front. Chem. Eng. China, 3 (2009) 146–154.
  66. N. Aslan, Y. Cebeci, Application of Box-Behnken design and response surface methodology for modeling of some Turkish coals, Fuel, 86 (2007) 90–97.
  67. A. Hadi, J. Karimi-Sabet, A. Dastbaz, Parametric study on the mixed solvent synthesis of ZIF-8 nano- and micro-particles for CO adsorption: a response surface study, Front. Chem. Sci. Eng., (2019) 1–16.
  68. B.K. Nandi, A. Goswami, M.K. Purkait, Adsorption characteristics of brilliant green dye on kaolin, J. Hazard. Mater., 161 (2009) 387–395.
  69. M. Mourabet, A. El Rhilassi, H. El Boujaady, M. Bennani-Ziatni, A. Taitai, Use of response surface methodology for optimization of fluoride adsorption in an aqueous solution by Brushite, Arabian J. Chem., 10 (2017) S3292–S3302.
  70. M. Pehlivan, S. Simsek, S. Ozbek, B. Ozbek, An extensive study on the synthesis of iron based magnetic aluminium oxide nanocomposites by solution combustion method, J. Mater. Res. Technol., 8 (2019) 1746–1760.
  71. M. Siddique, R. Farooq, A. Shaeen, Removal of Reactive Blue 19 from wastewaters by physicochemical and biological processes-a review, J. Chem. Soc. Pak., 33 (2011) 284–293.
  72. F. Çiçek, D. Özer, A. Özer, A. Özer, Low cost removal of reactive dyes using wheat bran, J. Hazard. Mater., 146 (2007) 408–416.
  73. H. Masitah, H.H. Bassim, A. Abdul Latif, Thermodynamic Studies on Removal of Reactive Blue 19 Dye on Cross-linked Chitosan/Oil Palm Ash Composite Beads, 3rd International Conference on Energy and Environment (ICEE), IEEE, Malacca, Malaysia, 2009, pp. 50–54.
  74. C.A. Igwegbe, L. Mohmmadi, S. Ahmadi, A. Rahdar, D. Khadkhodaiy, R. Dehghani, S. Rahdar, Modeling of adsorption of Methylene Blue dye on Ho-CaWO4 nanoparticles using response surface methodology (RSM) and artificial neural network (ANN) techniques, MethodsX, 6 (2019) 1779–1797.
  75. F. Ghorbani, S. Kamari, Application of response surface methodology for optimization of methyl orange adsorption by Fe-grafting sugar beet bagasse, Adsorpt. Sci. Technol., 35 (2017) 317–338.
  76. B.K. Aziz, D.M. Salh, S. Kaufhold, P. Bertier, The high efficiency of anionic dye removal using Ce-Al13/pillared clay from Darbandikhan natural clay, Molecules, 24 (2019) 2720.
  77. W. Konicki, M. Aleksandrzak, D. Moszyński, E. Mijowska, Adsorption of anionic azo-dyes from aqueous solutions onto graphene oxide: equilibrium, kinetic and thermodynamic studies, J. Colloid Interface Sci., 496 (2017) 188–200.
  78. M.J. Iqbal, M.N. Ashiq, Adsorption of dyes from aqueous solutions on activated charcoal, J. Hazard. Mater., 139 (2007) 57–66.
  79. G. Vijayalakshmi, B. Ramkumar, S.C. Mohan, Isotherm and kinetic studies of Methylene Blue adsorption using activated carbon prepared from teak wood waste biomass, J. Appl. Sci., 19 (2019) 827–836.
  80. P. Senthil Kumar, C. Vincent, K. Kirthika, K. Sathish Kumar, Kinetics and equilibrium studies of Pb2+ in removal from aqueous solutions by use of nano-silversol-coated activated carbon, Braz. J. Chem. Eng., 27 (2010) 339–346.
  81. Y. Gao, Q. Yue, B. Gao, Comparison on physical, chemical, and adsorption properties of activated carbon derived from different solid wastes, Desal. Water Treat., 57 (2016) 15503–15514.
  82. M.A. Mahmoud, Kinetics and thermodynamics of aluminum oxide nanopowder as adsorbent for Fe(III) from aqueous solution, Beni-Suef Univ. J. Basic Appl. Sci., 4 (2015) 142–149.
  83. E.I. Unuabonah, K.O. Adebowale, B.I. Olu-Owolabi, Kinetic and thermodynamic studies of the adsorption of lead(II) ions onto phosphate-modified kaolinite clay, J. Hazard. Mater., 144 (2007) 386–395.
  84. F. Güzel, H. Saygili, G.A. Saygili, F. Koyuncu, Elimination of anionic dye by using nanoporous carbon prepared from an industrial biowaste, J. Mol. Liq., 194 (2014) 130–140.