References

  1. A.B. Dos Santos, F.J. Cervantes, B. Jules van Lier, Review paper on current technologies for decolourisation of textile wastewaters: perspectives for anaerobic biotechnology, Bioresour. Technol., 98 (2007) 2369–2385.
  2. T. Robinson, G. McMullan, R. Marchant, P. Nigam, Remediation of dyes in textile effluent: a critical review on current treatment technologies with a proposed alternative, Bioresour. Technol., 77 (2001) 247–255.
  3. O. Türgay, G. Ersöz, S. Atalay, J. Forss, U. Welander, The treatment of azo dyes found in textile industry wastewater by anaerobic biological method and chemical oxidation, Sep. Purif. Technol., 79 (2011) 26–33.
  4. Z. Wang, M. Xue, K. Huang, Z. Liu, Textile Dyeing Wastewater Treatment, P. Hauser, Ed., Advances in Treating Textile Effluent, In Tech China, Shanghai, China, 2011.
  5. C. Comninellis, G. Chen, Electrochemistry for the Environment, Springer, New York, Dordrecht, Heidelberg, London, 2010.
  6. E. Brillas, C.A. Martínez-Huitle, Decontamination of wastewaters containing synthetic organic dyes by electrochemical methods. An updated review, Appl. Catal., B, 166–167 (2015) 603–643.
  7. J. Kim, C. Yeom, Y. Kim, Electrochemical degradation of organic dyes with a porous gold electrode, Korean J. Chem. Eng., 33 (2016) 1855–1859.
  8. M. Panizza, G. Cerisola, Direct and mediated anodic oxidation of organic pollutants, Chem. Rev., 109 (2009) 6541–6569.
  9. M. Panizza, Importance of Electrode Material in the Electrochemical Treatment of Wastewater Containing Organic Pollutants, C. Comninellis, G. Chen, Eds., Electrochemistry for the Environment, Springer, New York, Dordrecht, Heidelberg, London, 2010, p. 25.
  10. D. Shao, X. Li, H. Xu, W. Yan, An improved stable Ti/Sb–SnO2 electrode with high performance in electrochemical oxidation processes, RSC Adv., 4 (2014) 21230–21237.
  11. T. Kim, G.-P. Kim, D. Lee, Y. Kim, S.E. Shim, S.-H. Baeck, Electrochemical oxidation of organic matter in the presence of chloride over Ti/SnO2–Sb2O5 prepared via sol–gel methods, J. Nanosci. Nanotechnol., 16 (2016) 10892–10897.
  12. H. Xu, Q. Zhang, W. Yan, W. Chu, L. Zhang, Preparation and characterization of PbO2 electrodes doped with TiO2 and its degradation effect on azo dye wastewater, Int. J. Electrochem. Sci., 8 (2013) 5382–5395.
  13. M. Panizza, G. Cerisola, Electrochemical degradation of methyl red using BDD and PbO2 anodes, Ind. Eng. Chem. Res., 47 (2008) 6816–6820.
  14. F. Bonfatti, A. De Battisti, S. Ferro, G. Lodi, S. Osti, Anodic mineralization of organic substrates in chloride-containing aqueous media, Electrochim. Acta, 46 (2000) 305–314.
  15. F. Bonfatti, S. Ferro, F. Lavezzo, M. Malacarne, G. Lodi, A. De Battisti, Electrochemical incineration of glucose as a model organic substrate. II. Role of active chlorine mediation, J. Electrochem. Soc., 147 (2000) 592–596.
  16. M. Panizza, G. Cerisola, Electrochemical oxidation of 2-naphthol with in situ electrogenerated active chlorine, Electrochim. Acta, 48 (2003) 1515–1519.
  17. Y. Feng, D.W. Smith, J.R. Bolton, Photolysis of aqueous free chlorine species (HOCl and OCl) with 254 nm ultraviolet light, J. Environ. Eng. Sci., 6 (2007) 277–284.
  18. F.H. Oliveira, M.A. Osugi, F.M.M. Paschoal, D. Profeti, P. Olivi, V. Boldrin Zanoni, Electrochemical oxidation of an acid dye by active chlorine generated using Ti/Sn(1–x)IrxO2 electrodes, J. Appl. Electrochem., 37 (2007) 583–592.
  19. C.R. Costa, P. Olivi, Effect of chloride concentration on the electrochemical treatment of a synthetic tannery wastewater, Electrochim. Acta, 54 (2009) 2046–2052.
  20. S. Neodo, D. Rosestolato, S. Ferro, De A. Battisti, On the electrolysis of dilute chloride solutions: influence of the electrode material on Faradaic efficiency for active chlorine, chlorate and perchlorate, Electrochim. Acta, 80 (2012) 282–291.
  21. C.A. Martínez-Huitle, E. Brillas, Decontamination of wastewaters containing synthetic organic dyes by electrochemical methods: a general review, Appl. Catal., B, 87 (2009) 105–145.
  22. C.A. Martínez-Huitle, S. Ferro, Electrochemical oxidation of organic pollutants for the wastewater treatment: direct and indirect processes, Chem. Soc. Rev., 35 (2006) 1324–1340.
  23. F.A. Rodríguez, M.R. Cruz-Díaz, S. Gómez, J.A. Calderón, A. Ortega, E.P. Rivero, Generation of active chlorine in acid and alkaline medium using a 3D anode in an electrochemical reactor for Reactive Black 5 degradation, J. Adv. Oxid. Technol., 21 (2018) 149–158.
  24. L. Szpyrkowicz, S.N. Kaul, R.N. Neti, S. Satyanarayan, Influence of anode material on electrochemical oxidation for the treatment of tannery wastewater, Water Res., 39 (2005) 1601–1613.
  25. M. Hepel, J. Luo, Photoelectrochemical mineralization of textile diazo dye pollutants using nanocrystalline WO3 electrodes, Electrochim. Acta, 47 (2001) 729–740.
  26. C. Comninellis, A. Nerini, Anodic oxidation of phenol in the presence of NaCl for wastewater treatment, J. Appl. Electrochem., 25 (1995) 23–28.
  27. O. Scialdone, S. Randazzo, A. Galia, G. Silvestri, Electrochemical oxidation of organics in water: role of operative parameters in the absence and in the presence of NaCl, Water Res., 43 (2009) 2260–2272.
  28. C. Comninellis, Electrocatalysis in the electrochemical conversion/combustion of organic pollutants for wastewater treatment, Electrochim. Acta, 39 (1994) 1857–1862.
  29. N. Nordin, S.F. Mohd, M. Riyanto Rozali, Textile industries wastewater treatment by electrochemical oxidation technique using metal plate, Int. J. Electrochem. Sci., 8 (2013) 11403–11415.
  30. S. Trasatti, Electrocatalysis in the anodic evolution of oxygen and chlorine, Electrochim. Acta, 29 (1984) 1503–1512.
  31. C.J. Patton, S.R. Crouch, Spectrophotometric and kinetics investigation of the Berthelot reaction for the determination of ammonia, Anal. Chem., 49 (1977) 464–469.