References

  1. G. Lofrano, R. Pedrazzani, G. Libralato, M. Carotenuto, Advanced oxidation processes for antibiotics removal: a review, Curr. Org. Chem., 21 (2017) 1054–1067.
  2. M. Xu, J. Li, Y. Yan, X. Zhao, J. Yan, Y. Zhang, B. Lai, X. Chen, L. Song, Catalytic degradation of sulfamethoxazole through peroxymonosulfate activated with expanded graphite loaded CoFe2O4 particles, Chem. Eng. J., 369 (2019) 403–413.
  3. L. Lai, J. Yan, J. Li, B. Lai, Co/Al2O3-EPM as peroxymonosulfate activator for sulfamethoxazole removal: performance, biotoxicity, degradation pathways and mechanism, Chem. Eng. J., 343 (2018) 676–688.
  4. J. Yan, J. Li, J. Peng, H. Zhang, Y. Zhang, B. Lai, Efficient degradation of sulfamethoxazole by the CuO@Al2O3 (EPC) coupled PMS system: optimization, degradation pathways and toxicity evaluation, Chem. Eng. J., 359 (2019) 1097–1110.
  5. G. Ritu, S. Thhatikkonda, Antibiotic pollution in the environment: a review, Clean Soil Air Water, 43 (2015) 479–489.
  6. Y. Zhang, J. Xu, Z. Zhong, C. Guo, L. Li, Y. He, W. Fan, Y. Chen, Degradation of sulfonamides antibiotics in lake water and sediment, Environ. Sci. Pollut. Res., 20 (2013) 2372–2380.
  7. T. Aissani, I. Yahiaoui, F. Boudrahem, S. Ait Chikh, F. Aissani-Benissad, A. Amrane, The combination of photocatalysis process (UV/TiO2(P25) and UV/ZnO) with activated sludge culture for the degradation of sulfamethazine, SS&T, 53 (2018) 1423–1433.
  8. A.G. Trovó, R.F.P. Nogueira, A. Agüera, C. Sirtori, A.R. Fernández-Alba, Photodegradation of sulfamethoxazole in various aqueous media: persistence, toxicity and photoproducts assessment, Chemosphere, 77 (2009) 1292–1298.
  9. J. Rivera-Utrilla, M. Sánchez-Polo, M.Á. Ferro-García, G. Prados-Joya, R. Ocampo-Pérez, Pharmaceuticals as emerging contaminants and their removal from water. A review, Chemosphere, 93 (2013) 1268–1287.
  10. J.F. Gomes, I. Leal, K. Bednarczyk, M. Gmurek, M. Stelmachowski, M. Diak, M.E. Quinta-Ferreira, R. Costa, R.M. Quinta-Ferreira, R.C. Martins, Photocatalytic ozonation using doped TiO2 catalysts for the removal of parabens in water, ScTEn, 609 (2017) 329–340.
  11. J.F. Gomes, K. Bednarczyk, M. Gmurek, M. Stelmachowski, A. Zaleska-Medynska, F.C. Bastos, M.E. Quinta-Ferreira, R. Costa, R.M. Quinta-Ferreira, R.C. Martins, Noble metal–TiO2 supported catalysts for the catalytic ozonation of parabens mixtures, Process Saf. Environ. Prot., 111 (2017) 148–159.
  12. R.C. Martins, R.M. Quinta-Ferreira, Catalytic ozonation of phenolic acids over a Mn–Ce–O catalyst, Appl. Catal., B, 90 (2009) 268–277.
  13. M.N. Chong, B. Jin, C.W. Chow, C. Saint, Recent developments in photocatalytic water treatment technology: a review, Water Res., 44 (2010) 2997–3027.
  14. J.F. Gomes, I. Leal, K. Bednarczyk, M. Gmurek, M. Stelmachowski, A. Zaleska-Medynska, M.E. Quinta-Ferreira, R. Costa, R.M. Quinta-Ferreira, R.C. Martins, Detoxification of parabens using UV-A enhanced by noble metals—TiO2 supported catalysts, J. Environ. Chem. Eng., 5 (2017) 3065–3074.
  15. Z. Xiong, B. Lai, P. Yang, Insight into a highly efficient electrolysis-ozone process for N, N-dimethylacetamide degradation: quantitative analysis of the role of catalytic ozonation, Fenton-like and peroxone reactions, Water Res., 140 (2018) 12–23.
  16. T.E. Agustina, H.M. Ang, V.K. Vareek, A review of synergistic effect of photocatalysis and ozonation on wastewater treatment, J. Photochem. Photobiol., C, 6 (2005) 264–273.
  17. W. Ben, Y. Shi, W. Li, Y. Zhang, Z. Qiang, Oxidation of sulfonamide antibiotics by chlorine dioxide in water: kinetics and reaction pathways, Chem. Eng. J., 327 (2017) 743–750.
  18. J. Jung, Y. Kim, J. Kim, D.-H. Jeong, K. Choi, Environmental levels of ultraviolet light potentiate the toxicity of sulfonamide antibiotics in Daphnia magna, Ecotoxicology, 17 (2008) 37–45.
  19. L. Wollenberger, B. Halling-Sørensen, K.O. Kusk, Acute and chronic toxicity of veterinary antibiotics to Daphnia magna, Chemosphere, 40 (2000) 723–730.
  20. M. Gholami, M. Shirzad-Siboni, J.-K. Yang, Application of Ni-doped ZnO rods for the degradation of an azo dye from aqueous solutions, Korean J. Chem. Eng., 33 (2016) 812–822.
  21. A.L. Patterson, The Scherrer formula for X-ray particle size determination, PhRv, 56 (1939) 978–982.
  22. M. Naimi-Joubani, M. Shirzad-Siboni, J.-K. Yang, M. Gholami, M. Farzadkia, Photocatalytic reduction of hexavalent chromium with illuminated ZnO/TiO2 composite, J. Ind. Eng. Chem., 22 (2015) 317–323.
  23. A.Ö. Yıldırım, Ş. Gül, O. Eren, E. Kuşvuran, A comparative study of ozonation, homogeneous catalytic ozonation, and photocatalytic ozonation for C.I. Reactive Red 194 azo dye degradation, Clean Soil Air Water, 39 (2011) 795–805.
  24. M.J. Farré, M.I. Franch, S. Malato, J.A. Ayllón, J. Peral, X. Doménech, Degradation of some biorecalcitrant pesticides by homogeneous and heterogeneous photocatalytic ozonation, Chemosphere, 58 (2005) 1127–1133.
  25. S.-p. Tong, D.-m. Xie, H. Wei, W.-p. Liu, Degradation of sulfosalicylic acid by O3/UV O3/TiO2/UV, and O3/V-O/TiO2: a comparative study, OzSE, 27 (2005) 233–238.
  26. S. Nishimoto, T. Mano, Y. Kameshima, M. Miyake, Photocatalytic water treatment over WO3 under visible light irradiation combined with ozonation, CPL, 500 (2010) 86–89.
  27. U. Černigoj, U.L. Štangar, P. Trebše, Degradation of neonicotinoid insecticides by different advanced oxidation processes and studying the effect of ozone on TiO2 photocatalysis, Appl. Catal., B, 75 (2007) 229–238.
  28. J.K. Challis, J.C. Carlson, K.J. Friesen, M.L. Hanson, C.S. Wong, Aquatic photochemistry of the sulfonamide antibiotic sulfapyridine, J. Photochem. Photobiol., A, 262 (2013) 14–21.
  29. T. Sekimoto, S. Nishihama, K. Yoshizuka, R. Maeda, Adsorptive removal of sulfamethoxazole with shell-core chitosan immobilized metal ion, SS&T, 53 (2018) 1116–1123.
  30. F.J. Beltrán, A. Aguinaco, J.F. García-Araya, Mechanism and kinetics of sulfamethoxazole photocatalytic ozonation in water, Water Res., 43 (2009) 1359–1369.
  31. M. Klavarioti, D. Mantzavinos, D. Kassinos, Removal of residual pharmaceuticals from aqueous systems by advanced oxidation processes, Environ. Int., 35 (2009) 402–417.
  32. F. Madjene, N. Yeddou-Mezenner, Design and optimization of a new photocatalytic reactor with immobilized ZnO for water purification, SS&T, 53 (2018) 364–373.
  33. E.M. Rodríguez, G. Márquez, E.A. León, P.M. Álvarez, A.M. Amat, F.J. Beltrán, Mechanism considerations for photocatalytic oxidation, ozonation and photocatalytic ozonation of some pharmaceutical compounds in water, J. Environ. Manage., 127 (2013) 114–124.
  34. M. Shirzad-Siboni, A. Khataee, B. Vahid, S.W. Joo, Synthesis, characterization and immobilization of ZnO nanosheets on scallop shell for photocatalytic degradation of an insecticide, Sci. Adv. Mater., 7 (2015) 806–814.
  35. M. Mehrjouei, S. Müller, D. Möller, Catalytic and photocatalytic ozonation of tert-butyl alcohol in water by means of falling film reactor: kinetic and cost–effectiveness study, Chem. Eng. J., 248 (2014) 184–190.
  36. L. Sánchez, J. Peral, X. Domènech, Aniline degradation by combined photocatalysis and ozonation, Appl. Catal., B, 19 (1998) 59–65.
  37. R.R. Giri, H. Ozaki, T. Ishida, R. Takanami, S. Taniguchi, Synergy of ozonation and photocatalysis to mineralize low concentration 2,4-dichlorophenoxyacetic acid in aqueous solution, Chemosphere, 66 (2007) 1610–1617.
  38. N.P. Xekoukoulotakis, C. Drosou, C. Brebou, E. Chatzisymeon, E. Hapeshi, D. Fatta-Kassinos, D. Mantzavinos, Kinetics of UV-A/TiO2 photocatalytic degradation and mineralization of the antibiotic sulfamethoxazole in aqueous matrices, Catal. Today, 161 (2011) 163–168.
  39. O. Turkay, H. Inan, A. Dimoglo, Experimental and theoretical study on catalytic ozonation of humic acid by ZnO catalyst, SS&T, 52 (2017) 778–786.
  40. F.J. Beltrán, A. Aguinaco, J.F. García-Araya, A. Oropesa, Ozone and photocatalytic processes to remove the antibiotic sulfamethoxazole from water, Water Res., 42 (2008) 3799–3808.
  41. R. Rajeswari, S. Kanmani, A study on synergistic effect of photocatalytic ozonation for carbaryl degradation, Desalination, 242 (2009) 277–285.
  42. T. Garoma, S.K. Umamaheshwar, A. Mumper, Removal of sulfadiazine, sulfamethizole, sulfamethoxazole, and sulfathiazole from aqueous solution by ozonation, Chemosphere, 79 (2010) 814–820.
  43. A. Jonidi-Jafari, M. Gholami, M. Farzadkia, A. Esrafili, M. Shirzad-Siboni, Application of Ni-doped ZnO nanorods for degradation of diazinon: kinetics and by-products, SS&T, 52 (2017) 2395–2406.
  44. G.-A.J. F., B.F. J., A. Almudena, Diclofenac removal from water by ozone and photolytic TiO2 catalysed processes, J. Chem. Technol. Biotechnol., 85 (2010) 798–804.
  45. F.J. Beltrán, A. Aguinaco, A. Rey, J.F. García-Araya, Kinetic studies on black light photocatalytic ozonation of diclofenac and sulfamethoxazole in water, Ind. Eng. Chem. Res., 51 (2012) 4533–4544.
  46. H. Li, B. Xu, F. Qi, D. Sun, Z. Chen, Degradation of bezafibrate in wastewater by catalytic ozonation with cobalt doped red mud: efficiency, intermediates and toxicity, Appl. Catal., B, 152 (2014) 342–351.
  47. G. Moussavi, A. Alahabadi, K. Yaghmaeian, M. Eskandari, Preparation, characterization and adsorption potential of the NH4Cl-induced activated carbon for the removal of amoxicillin antibiotic from water, Chem. Eng. J., 217 (2013) 119–128.
  48. P. Pocostales, P. Álvarez, F.J. Beltrán, Catalytic ozonation promoted by alumina-based catalysts for the removal of some pharmaceutical compounds from water, Chem. Eng. J., 168 (2011) 1289–1295.
  49. F.J. Beltrán, P. Pocostales, P.M. Álvarez, F. López-Piñeiro, Catalysts to improve the abatement of sulfamethoxazole and the resulting organic carbon in water during ozonation, Appl. Catal., B,92 (2009) 262–270.
  50. A.G. Gonçalves, J.J.M. Órfão, M.F.R. Pereira, Catalytic ozonation of sulphamethoxazole in the presence of carbon materials: catalytic performance and reaction pathways, J. Hazard. Mater., 239–240 (2012) 167–174.
  51. J.P. Pocostales, P.M. Alvarez, F.J. Beltrán, Kinetic modeling of powdered activated carbon ozonation of sulfamethoxazole in water, Chem. Eng. J., 164 (2010) 70–76.
  52. D. Shahidi, A. Moheb, R. Abbas, S. Larouk, R. Roy, A. Azzouz, Total mineralization of sulfamethoxazole and aromatic pollutants through Fe2+-montmorillonite catalyzed ozonation, J. Hazard. Mater., 298 (2015) 338–350.
  53. Z. Bai, Q. Yang, J. Wang, Catalytic ozonation of sulfamethazine using Ce0.1Fe0.9OOH as catalyst: mineralization and catalytic mechanisms, Chem. Eng. J., 300 (2016) 169–176.
  54. S. Fukahori, T. Fujiwara, R. Ito, N. Funamizu, pH-dependent adsorption of sulfa drugs on high silica zeolite: modeling and kinetic study, Desalination, 275 (2011) 237–242.
  55. R.R. Solís, F.J. Rivas, O. Gimeno, J.L. Pérez‐Bote, Photocatalytic ozonation of clopyralid, picloram and triclopyr. Kinetics, toxicity and influence of operational parameters, J. Chem. Technol. Biotechnol., 91 (2016) 51–58.
  56. X. Liu, T. Garoma, Z. Chen, L. Wang, Y. Wu, SMX degradation by ozonation and UV radiation: a kinetic study, Chemosphere, 87 (2012) 1134–1140.
  57. A. Rey, J. Carbajo, C. Adán, M. Faraldos, A. Bahamonde, J.A. Casas, J.J. Rodriguez, Improved mineralization by combined advanced oxidation processes, Chem. Eng. J., 174 (2011) 134–142.
  58. M. Mehrjouei, S. Müller, D. Möller, A review on photocatalytic ozonation used for the treatment of water and wastewater, Chem. Eng. J., 263 (2015) 209–219.
  59. P.E. Stackelberg, E.T. Furlong, M.T. Meyer, S.D. Zaugg, A.K. Henderson, D.B. Reissman, Persistence of pharmaceutical compounds and other organic wastewater contaminants in a conventional drinking-water-treatment plant, ScTEn, 329 (2004) 99–113.
  60. M.C. Dodd, C.-H. Huang, Transformation of the antibacterial agent sulfamethoxazole in reactions with chlorine: kinetics, mechanisms, and pathways, Environ. Sci. Technol., 38 (2004) 5607–5615.
  61. F.J. Beltrán, A. Aguinaco, J.F. García-Araya, Kinetic modelling of TOC removal in the photocatalytic ozonation of diclofenac aqueous solutions, Appl. Catal. B, 100 (2010) 289–298.
  62. N.-C. Shang, Y.-H. Yu, H.-W. Ma, C.-H. Chang, M.-L. Liou, Toxicity measurements in aqueous solution during ozonation of mono-chlorophenols, J. Environ. Manage., 78 (2006) 216–222.