References

  1. M. Rajabi, K. Mahanpoor, O. Moradi, Removal of dye molecules from aqueous solution by carbon nanotubes and carbon nanotube functional groups: critical review, RSC Adv., 7 (2017) 47083–47090.
  2. J.A. Awomeso, A.M. Taiwo, A.M. Gbadebo, J.A. Adenowo, Studies on the pollution of waterbody by textile industry effluents in Lagos, Nigeria, J. Appl. Sci. Environ. Sanitation, 5 (2010) 353–359.
  3. F. Almomani, R. Bhosale, M. Khraisheh, A. Kumar, T. Almomani, Heavy metal ions removal from industrial wastewater using magnetic nanoparticles (MNP), Appl. Surf. Sci., 506 (2020) 144924.
  4. R. Khan, V. Patel, Z. Khan, Chapter 5 – Bioremediation of Dyes from Textile and Dye Manufacturing Industry Effluent, P. Singh, A. Kumar, A. Borthakur, Eds., Abatement of Environmental Pollutants: Trends and Strategies, Elsevier, Amsterdam, Netherlands, 2020, pp. 107–125.
  5. R.G. Saratale, J.R. Banu, H.-S. Shin, R.N. Bharagava, G.D. Saratale, Textile Industry Wastewaters as Major Sources of Environmental Contamination: Bioremediation Approaches for its Degradation and Detoxification, G. Saxena, R. Bharagava, Eds., Bioremediation of Industrial Waste for Environmental Safety, Springer, Berlin, Germany, 2020, pp. 135–167.
  6. M.H. Ehrampoush, Gh.R. Moussavi, M.T. Ghaneian, S. Rahimi, M. Ahmadian, Removal of methylene blue dye from textile simulated sample using tubular reactor and TiO2/UV-C photocatalytic process, Iran. J. Environ. Health. Sci. Eng., 8 (2011) 35–40.
  7. M.A. Rauf, S.S. Ashraf, Survey of recent trends in biochemically assisted degradation of dyes, Chem. Eng. J., 209 (2012) 520–530.
  8. V.V. Panić, S.I. Šešlija, A.R. Nešić, S.J. Veličković, Adsorption of azo dyes on polymer materials, Hemijska industrija, 67 (2013) 881–900.
  9. S. Caprarescu, A.R. Miron, V. Purcar, A.-L. Radu, A. Sarbu, D. Ion-Ebrasu, L.-I. Atanase, M. Ghiurea, Efficient removal of Indigo Carmine dye by a separation process, Water Sci. Technol., 74 (2016) 2462–2473.
  10. Y. Tang, R. Yang, D. Ma, B. Zhou, L. Zhu, J. Yang, Removal of methyl orange from aqueous solution by adsorption onto a hydrogel composite, Polym. Polym. Compos., 26 (2018) 161–168.
  11. A.G. Naikwade, M.B. Jagadale, D.P. Kale, A.D. Gophane, K.M. Garadkar, G.S. Rashinkar, Photocatalytic degradation of methyl orange by magnetically retrievable supported ionic liquid phase photocatalyst, ACS Omega, 5 (2020) 131–144.
  12. M. Ismail, S. Gul, M.I. Khan, M.A. Khan, A.M. Asiri, S.B. Khan, Medicago polymorpha-mediated antibacterial silver nanoparticles in the reduction of methyl orange, Green Process. Synth., 8 (2019) 118–127.
  13. V. Katheresan, J. Kansedo, S.Y. Lau, Efficiency of various recent wastewater dye removal methods: a review, J. Environ. Chem. Eng., 6 (2018) 4676–4697.
  14. C. Galindo, P. Jacques, A. Kalt, Photodegradation of the aminoazobenzene acid orange 52 by three advanced oxidation processes: UV/H2O2, UV/TiO2 and VIS/TiO2: comparative mechanistic and kinetic investigations, J. Photochem. Photobiol., A, 130 (2000) 35–47.
  15. M.-C. Lu, Oxidation of chlorophenols with hydrogen peroxide in the presence of goethite, Chemosphere, 40 (2000) 125–130.
  16. A.R. Khataee, V. Vatanpour, A.R.A. Ghadim, Decolorization of C.I. Acid Blue 9 solution by UV/Nano-TiO2, Fenton, Fenton-like, electro-Fenton and electrocoagulation processes: a comparative study, J. Hazard. Mater., 161 (2009) 1225–1233.
  17. A. Tripathi, M.R. Ranjan, Heavy metal removal from wastewater using low cost adsorbents, J. Biorem. Biodegrad., 6 (2015) 1–5.
  18. X.-s. Wang, Y. Qin, Equilibrium sorption isotherms for of Cu2+ on rice bran, Process Biochem., 40 (2005) 677–680.
  19. M.A. Khan, M.I. Khan, S. Zafar, Removal of different anionic dyes from aqueous solution by anion exchange membrane, Membr. Water Treat., 8 (2017) 259–277.
  20. M.I. Khan, T.M. Ansari, S. Zafar, A.R. Buzdar, M.A. Khan, F. Mumtaz, P. Prapamonthon, M. Akhtar, Acid green-25 removal from wastewater by anion exchange membrane: adsorption kinetic and thermodynamic studies, Membr. Water Treat., 9 (2018) 79–85.
  21. M.I. Khan, L. Wu, A.N. Mondal, Z. Yao, L. Ge, T. Xu, Adsorption of methyl orange from aqueous solution on anion exchange membranes: adsorption kinetics and equilibrium, Membr. Water Treat., 7 (2016) 23–38.
  22. M.I. Khan, S. Zafar, M.A. Khan, A.R. Buzdar, P. Prapamonthon, Adsorption kinetic, equilibrium and thermodynamic study for the removal of Congo Red from aqueous solution, Desal. Water Treat., 98 (2017) 294–305.
  23. M.I. Khan, M.A. Khan, S. Zafar, M.N. Ashiq, M. Athar, A.M. Qureshi, M. Arshad, Kinetic, equilibrium and thermodynamic studies for the adsorption of methyl orange using new anion exchange membrane (BII), Desal. Water Treat., 58 (2017) 285–297.
  24. M.I. Khan, S. Akhtar, S. Zafar, A. Shaheen, M.A. Khan, R. Luque, A. ur Rehman, Removal of congo red from aqueous solution by anion exchange membrane (EBTAC): adsorption kinetics and themodynamics, Materials (Basel), 8 (2015) 4147–4161.
  25. A. Roghanizad, M.K. Abdolmaleki, S.M. Ghoreishi, M. Dinari, One-pot synthesis of functionalized mesoporous fibrous silica nanospheres for dye adsorption: isotherm, kinetic, and thermodynamic studies, J. Mol. Liq., 300 (2020) 112367.
  26. A. Dąbrowski, Adsorption—from theory to practice, Adv. Colloid Interface Sci., 93 (2001) 135–224.
  27. S. Khandaker, Y. Toyohara, G.C. Saha, Md.R. Awual, T. Kuba, Development of synthetic zeolites from bio-slag for cesium adsorption: kinetic, isotherm and thermodynamic studies, J. Water Process Eng., 33 (2020) 101055.
  28. D. Ociński, P. Mazur, Highly efficient arsenic sorbent based on residual from water deironing – sorption mechanisms and column studies, J. Hazard. Mater., 382 (2020) 121062.
  29. C. Verma, M.A. Quraishi, E.E. Ebenso, A Review on Ammonia Derivatives as Corrosion Inhibitors for Metals and Alloys, Inamuddin, R. Boddula, A. Asiri, Eds., Sustainable Ammonia Production, Springer, 2020, pp. 49–67.