References

  1. J. Sahara, A. Naeema, M. Farooqa, S. Zareena, A.U. Rahman, Thermodynamic studies of adsorption of rhodamine B and Congo red on graphene oxide, Desal. Water Treat., 164 (2019) 228–239.
  2. Y. Tang, M. Li, C. Mu, J. Zhou, B. Shi, Ultrafast and efficient removal of anionic dyes from wastewater by polyethyleneiminemodified silica nanoparticles, Chemosphere, 229 (2019) 570–579.
  3. P.S. Kumar, J. Pavithra, S. Suriya, M. Ramesh, K.A. Kumar, Sargassum wightii, a marine alga is the source for the production of algal oil, bio-oil, and application in the dye wastewater treatment, Desal. Water Treat., 55 (2015) 1342–1358.
  4. Y. Zhou, J. Lu, Y. Zhou, Y. Liu, Recent advances for dyes removal using novel adsorbents: a review, Environ. Pollut., 252 (2019) 352–365.
  5. V.S. Munagapati, D.S. Kim, Equilibrium isotherms, kinetics, and thermodynamics studies for Congo red adsorption using calcium alginate beads impregnated with nano-goethite, Ecotoxicol. Environ. Saf., 141 (2017) 226–234.
  6. A.R. Petcu, C.A. Lazar, E.A. Rogozea, N.L. Olteanu, A. Meghea, M. Mihaly, Nonionic microemulsion systems applied for removal of ionic dyes mixtures from textile industry wastewaters, Sep. Purif. Technol., 158 (2016) 155–159.
  7. P. Vairavel, V.R. Murty, Continuous fixed-bed adsorption of Congo red dye by dual adsorbent (Neurospora crassa dead fungal biomass and wheat bran): experimental and theoretical breakthrough curves, immobilization and reusability studies, Desal. Water Treat., 98 (2017) 276–293.
  8. S.N. Jain, P.R. Gogate, Adsorptive removal of acid violet 17 dye from wastewater using biosorbent obtained from NaOH and H2SO4 activation of fallen leaves of Ficus racemosa, J. Mol. Liq., 243 (2017) 132–143.
  9. M. Naushad, Z.A. Alothman, M.R. Awual, S.M. Alfadul, T. Ahamad, Adsorption of rose Bengal dye from aqueous solutionby amberlite IRA-938 resin: kinetics, isotherms, and thermodynamic studies, Desal. Water Treat., 57 (2016) 13527–13533.
  10. G. Sharma, M. Naushad, A. Kumar, S. Rana, S. Sharma, A. Bhatnagar, F.J. Stadler, A.A. Ghfar, M.R. Khan, Efficient removal of coomassie brilliant blue R-250 dye using starch/poly(alginic acid-cl-acrylamide) nanohydrogel, Process Saf. Environ., 109 (2017) 301–310.
  11. G. Sharma, M. Naushad, D. Pathania, A. Mittal, G.E. El-Desoky, Modification of Hibiscus cannabinus fiber by graft copolymerization: application for dye removal, Desal. Water Treat., 54 (2015) 3114–3121.
  12. Z.A. Medvedev, H.M. Crowne, M.N. Medvedeva, Age related variations of hepatocarcinogenic effect of azo dye (3’-MDAB) as linked to the level of hepatocyte polyploidization, Mech. Ageing Dev., 46 (1988) 159–174.
  13. S.E. Subramani, D. Kumaresan, N. Thinakaran, Application of activated carbon derived from waste Delonix regia seed pods for the adsorption of acid dyes: kinetic and equilibrium studies, Desal. Water Treat., 57 (2016) 7322–7333.
  14. S. Dardouri, J. Sghaier, A comparative study of adsorption and regeneration with different agricultural wastes as adsorbents for the removal of methylene blue from aqueous solution, Chin. J. Chem. Eng., 25 (2017) 1282–1287.
  15. P. Vairavel, V.R. Murty, S. Nethaji, Removal of Congo red dye from aqueous solutions by adsorption onto a dual adsorbent (Neurospora crassa dead biomass and wheat bran): optimization, isotherm, and kinetics studies, Desal. Water Treat., 68 (2017) 274–292.
  16. A.B. Albadarin, M.N. Collins, M. Naushad, S. Shirazian, G. Walker, C. Mangwandi, Activated lignin-chitosan extruded blends for efficient adsorption of methylene blue, Chem. Eng. J., 307 (2017) 264–272.
  17. H. Singh, G. Chauhan, A.K. Jain, S.K. Sharma, Adsorptive potential of agricultural wastes for removal of dyes from aqueous solutions, J. Environ. Chem. Eng., 5 (2017) 122–135.
  18. W.X. Zhang, L. Lai, P. Mei, Y. Li, Y.H. Li, Y. Liu, Enhanced removal efficiency of acid red 18 from aqueous solution using wheat bran modified by multiple quaternary ammonium salts, Chem. Phys. Lett.,710 (2018) 193–201.
  19. Z.N. Garba, I. Bello, A. Galadima, A.Y. Lawal, Optimization of adsorption conditions using central composite design for the removal of copper(II) and lead(II) by defatted papaya seed, Karbala Int. J. Mod. Sci., 2 (2016) 20–28.
  20. A. Buthiyappan, J. Gopalan, A.A.A. Raman, Synthesis of iron oxides impregnated green adsorbent from sugarcane bagasse: characterization and evaluation of adsorption efficiency, J. Environ. Manage., 249 (2019) 109323–109334.
  21. K.M. Mousa, A.H. Taha, Adsorption of reactive blue dye onto natural and modified wheat straw, J. Chem. Eng. Process Technol., 6 (2015) 260–265.
  22. J.P. Fan, B. Zheng, Y. Qin, D. Yang, D.D. Liao, X.K. Xu, X.H. Zhang, J.H. Zhu, A superparamagnetic Fe3O4-graphene oxide nanocomposite for enrichment of nuciferine in the extract of Nelumbinis folium (Lotus leaf), Appl. Surf. Sci., 364 (2016) 332–339.
  23. R.K. Bharali, K.G. Bhattacharyya, Biosorption of fluoride on neem (Azadirachta indica) leaf powder, J. Environ. Chem. Eng., 3 (2015) 662–669.
  24. K.A. Adegoke, O.S. Bello, Dye sequestration using agricultural wastes as adsorbents, Water Resour. Ind., 12 (2015) 8–24.
  25. K.G. Bhattacharyya, A. Sharma, Azadirachta indica leaf powder as an effective biosorbent for dyes: a case study with aqueous Congo red solutions, J. Environ. Manage., 71 (2004) 217–229.
  26. M.A. Hossain, W.A.S. Al-Toubi, A.M. Weli, Q.A. Al-Riyami, J.N. Al-Sabahi, Identification and characterization of chemical compounds in different crude extracts from leaves of Omani neem, J. Taibah Univ. Sci., 7 (2013) 181–188.
  27. E. Vunain, D. Kenneth, T. Biswick, Synthesis and characterization of low-cost activated carbon prepared from Malawian baobab fruit shells by H3PO4 activation for removal of Cu(II) ions: equilibrium and kinetics studies, Appl. Water Sci., 7 (2017) 4301–4319.
  28. P. Vairavel, V.R. Murty, Optimization of batch process parameters for Congo red color removal by Neurospora crassa live fungal biomass with wheat bran dual adsorbent using response surface methodology, Desal. Water Treat., 103 (2018) 84–101.
  29. P. Vairavel, V.R. Murty, Optimization, kinetics, equilibrium isotherms and thermodynamics studies for Congo red dye adsorption using calcium alginate beads immobilized with dual adsorbent (Neurospora crassa dead fungal biomass and wheat bran), Desal. Water Treat., 97 (2017) 338–362.
  30. J. Maity, S.K. Ray, Removal of Pb(II) from water using a biocomposite adsorbent - a systematic approach of optimizing synthesis and process parameters by response surface methodology, J. Environ. Manage., 209 (2018) 112–125.
  31. B. Zhang, X. Han, P. Gu, S. Fang, J. Bai, Response surface methodology approach for optimization of ciprofloxacin adsorption using activated carbon derived from the residue of desilicated rice husk, J. Mol. Liq., 238 (2017) 316–325.
  32. A.S. Abdulhameed, A.K.T. Mohammad, A.H. Jawad, Modeling and mechanism of reactive orange 16 dye adsorption by chitosan-glyoxal/TiO2 nanocomposite: application of response surface methodology, Desal. Water Treat., 164 (2019) 346–360.
  33. A.H. Jawad, N.S.A. Mubarak, S. Sabar, Adsorption and mechanism study for reactive red 120 dye removal by crosslinked chitosan-epichlorohydrin biobeads, Desal. Water Treat., 164 (2019) 378–387.
  34. H.M.F. Freundlich, Over the adsorption in solution, J. Phys. Chem., 385 (1906) 385–470.
  35. I. Langmuir, The adsorption of gases on plane surfaces of glass, mica and platinum, J. Am. Chem. Soc., 40 (1918) 1361–1403.
  36. K.R. Hall, L.C. Eagleton, A. Acrivos, T. Vermeulen, Pore and solid diffusion kinetics in fixed-bed adsorption under constant pattern conditions, Ind. Eng. Chem. Fundam., 5 (1966) 212–223.
  37. L. Mouni, L. Belkhiri, J.C. Bollinger, A. Bouzaza, A. Assadi, A. Tirri, F. Dahmoune, K. Madani, H. Remini, Removal of methylene blue from aqueous solutions by adsorption on Kaolin: kinetic and equilibrium studies, Appl. Clay Sci., 153 (2018) 38–45.
  38. M.J. Temkin, V. Pyzhev, Kinetics of ammonia synthesis on promoted iron catalysts, Acta Phys. Chim., 12 (1940) 217–222.
  39. V.S. Munagapati, D.S. Kim, Adsorption of anionic azo dye congo red from aqueous solution by cationic modified orange peel powder, J. Mol. Liq., 220 (2016) 540–548.
  40. A.A. Alqadami, M. Naushad, M.A. Abdalla, M.R. Khan, Z.A. Alothman, Adsorptive removal of toxic dye using Fe3O4−TSC nanocomposite: equilibrium, kinetic, and thermodynamic studies, J. Chem. Eng. Data, 61 (2016) 3806–3813.
  41. D. Garg, C.B. Majumder, S. Kumar, B. Sarkar, Removal of direct blue-86 dye from aqueous solution using alginate encapsulated activated carbon (PnsAC-alginate) prepared from waste peanut shell, J. Environ. Chem. Eng., 7 (2019) 103365–103378.
  42. V.K. Gupta, D. Pathania, S. Sharma, S. Agarwal, P. Singh, Remediation and recovery of methyl orange from aqueous solution onto acrylic acid grafted Ficus carica fiber: isotherms, kinetics and thermodynamics, J. Mol. Liq., 177 (2013) 325–334.
  43. A.A. Alqadami, M. Naushad, Z.A. Alothman, A.A. Ghfar, Novel metal−organic framework (MOF) based composite material for the sequestration of U(VI) and Th(IV) metal ions from aqueous environment, ACS Appl. Mater. Interfaces, 9 (2017) 36026–36037.
  44. T. Tatarchuk, N. Paliychuk, R.B. Bitra, A. Shyichuk, M. Naushad, I. Mironyuk, D. Ziolkowska, Adsorptive removal of toxic methylene blue and Acid Orange 7 dyes from aqueous medium using cobalt-zinc ferrite nanoadsorbents, Desal. Water Treat., 150 (2019) 374–385.
  45. M. Makrygianni, Z.G. Lada, A. Manousou, C.A. Aggelopoulos, V. Deimede, Removal of anionic dyes from aqueous solution by novel pyrrolidinium-based polymeric ionic liquid (PIL) as adsorbent: investigation of the adsorption kinetics, equilibrium isotherms and the adsorption mechanisms involved, J. Environ. Chem. Eng., 7 (2019) 103163–103173.
  46. J.P. Calderon, M.V. Santos, N. Zaritzky, Reactive RED 195 dye removal using chitosan coacervated particles as bio-sorbent: analysis of kinetics, equilibrium and adsorption mechanisms, J. Environ. Chem. Eng., 6 (2018) 6749–6760.
  47. S. Lagergren, Zur theorie der sogenannten adsorption geloster stoffe, Kungliga svenska vetenskapsakademiens, Handlingar, 24 (1898) 1–39.
  48. Y.S. Ho, G. McKay, Pseudo-second-order model for sorption processes, Process Biochem., 34 (1999) 451–465.
  49. S. Shakoor, A. Nasar, Removal of methylene blue dye from artificially contaminated water using Citrus limetta peel waste as a very low cost adsorbent, J. Taiwan Inst. Chem. Eng., 66 (2016) 154–163.
  50. D. Pathania, A. Sharma, Z.M. Siddiqi, Removal of Congo red dye from aqueous system using Phoenix dactylifera seeds, J. Mol. Liq., 219 (2016) 359–367.
  51. P. Terangpi, S. Chakraborty, Adsorption kinetics and equilibrium studies for removal of acid azo dyes by aniline formaldehyde condensate, Appl. Water Sci., 7 (2017) 3661–3671.
  52. D.D. Sewu, P. Boakye, S.H.Woo, Highly efficient adsorption of cationic dye by biochar produced with Korean cabbage waste, Bioresour. Technol., 224 (2017) 206–213.
  53. E. Daneshvar, A. Vazirzadeh, A. Niazi, M. Kousha, M. Naushad, A. Bhatnagar, Desorption of methylene blue dye from brown macroalga: effects of operating parameters, isotherm study and kinetic modeling, J. Cleaner Prod., 152 (2017) 443–453.
  54. O.A. Ekpete, A.C. Marcus, V. Osi, Preparation and characterization of activated carbon obtained from plantain (Musa paradisiaca) fruit stem, J. Chem., 2017 (2017) 1–6.
  55. M. Rajib, C.T. Oguchi, S.M.M. Hasan, In-situ oxidation effect on pore size distribution in investigating adsorption properties under various geochemical conditions, Solid Earth Sci., 4 (2019) 113–124.
  56. P.C. Jain, M. Jain, Engineering Chemistry (Chemistry of Engineering Materials), 9th ed., Dhanpat Rai & Sons Publishing Company Ltd., India, 1992.
  57. B.H. Stuart, Infrared Spectroscopy: Fundamentals and Applications, John Wiley & Sons Ltd., New York, USA, 2004.
  58. L. Gnanasekaran, R. Hemamalini, M. Naushad, Efficient photocatalytic degradation of toxic dyes using nanostructured TiO2/polyaniline nanocomposite, Desal. Water Treat., 108 (2018) 322–328.
  59. S. Salla, N.R. Ankem, P.S. Kumar, A.A. Renita, K. Micheal, Enhanced photocatalytic activity of environment-friendly C/ZnFe2O4 nanocomposites: application in dye removal, Desal. Water Treat., 137 (2019) 395–402.
  60. R.M. Ali, H.A. Hamad, M.M. Hussein, G.F. Malash, Potential of using green adsorbent of heavy metal removal from aqueous solutions: adsorption kinetics, isotherm, thermodynamic, mechanism and economic analysis, Ecol. Eng., 91 (2016) 317–332.
  61. D. Montgomery, G.C. Runger, Applied statistics and probability for engineers, 5th ed., John Wiley & Sons Ltd., New York, USA, 2011.
  62. A. Takdastan, S. Samarbaf, Y. Tahmasebi, N. Alavi, A.A. Babaei, Alkali modified oak waste residues as a cost-effective adsorbent for enhanced removal of cadmium from water: isotherm, kinetic, thermodynamic and artificial neural network modeling, J. Ind. Eng. Chem., 78 (2019) 352–363.
  63. N. Kannan, S. Murugavel, Comparative study on the removal of acid violet by adsorption on various low cost adsorbents, Global NEST J., 10 (2008) 395–403.
  64. M.R. Patil, V.S. Shrivastava, Adsorption removal of carcinogenic acid violet19 dye from aqueous solution by polyaniline-Fe2O3 magnetic nano-composite, J. Mater. Environ. Sci., 6 (2015) 11–21.
  65. C. Namasivayam, R.T. Yamuna, D.J.S.E. Arasi, Removal of acid violet from waste water by adsorption on waste red mud, Environ. Geol., 41 (2001) 269–273.
  66. O. Anjaneya, M. Santoshkumar, S.N. Anand, T.B. Karegoudar, Biosorption of acid violet dye from aqueous solutions using native biomass of a new isolate of Penicillium sp., Int. Biodeterior. Biodegrad., 63 (2009) 782–787.
  67. D. Edison, K.S. Ramesh, M.S. Sivaramkumar, R. Velmurugan, Removal of acid violet 19 dye from aqueous solution by adsorption onto activated charcoal and polyaniline coated charcoal, Int. J. Trend Res. Dev., 3 (2016) 22–27.
  68. C. Namasivayam, R. Radhika, S. Suba, Uptake of dyes by a promising locally available agricultural solid waste: coir pith, Waste Manage., 21 (2001) 381–387.
  69. C. Namasivayam, N. Kanchana, Waste banana pith as adsorbent for color removal from wastewaters, Chemosphere, 25 (1992) 1691–1705.
  70. S. Rajeshwari, C. Namasivayam, K. Kadirvelu, Orange peel as an adsorbent in the removal of acid violet 17 (acid dye) from aqueous solutions, Waste Manage., 21 (2001) 105–110.
  71. Sumanjit, T.P.S. Walia, R. Kaur, Removal of health hazards causing acidic dyes from aqueous solutions by the process of adsorption, Online J. Health Allied Sci., 3 (2007) 1–10.
  72. W. Konicki, A. Hełminiak, W. Arabczyk, E. Mijowska, Removal of anionic dyes using magnetic Fe@graphite coreshell nanocomposite as an adsorbent from aqueous solutions, J. Colloid Interface Sci., 497 (2017) 155–164.
  73. H. Shayesteh, A.R. Kelishami, R. Norouzbeigi, Evaluation of natural and cationic surfactant modified pumice for Congo red removal in batch mode: kinetic, equilibrium, and thermodynamic studies, J. Mol. Liq., 221 (2016) 1–11.
  74. R.A. Reza, M. Ahmaruzzaman, A novel synthesis of Fe2O3@ activated carbon composite and its exploitation for the elimination of carcinogenic textile dye from an aqueous phase, RSC Adv., 5 (2015) 10575–10586.
  75. R. Sahraei, K. Hemmati, M. Ghaemy, Adsorptive removal of toxic metals and cationic dyes by magnetic adsorbent based on functionalized graphene oxide from water, RSC Adv., 76 (2016) 72487–72499.