References

  1. N. Daneshvar, D. Salari, A. Niaei, A. Khataee, Photocatalytic degradation of the herbicide erioglaucine in the presence of nanosized titanium dioxide: comparison and modeling of reaction kinetics, J. Environ. Sci. Health, Part B, 41 (2006) 1273–1290.
  2. R. Pourata, A. Khataee, S. Aber, N. Daneshvar, Removal of the herbicide Bentazon from contaminated water in the presence of synthesized nanocrystalline TiO2 powders under irradiation of UV-C light, Desalination, 249 (2009) 301–307.
  3. A. Derylo-Marczewska, M. Blachnio, A. Marczewski, A. Swiatkowski, B. Tarasiuk, Adsorption of selected herbicides from aqueous solutions on activated carbon, J. Therm. Anal. Calorim., 101 (2010) 785–794.
  4. World Health Organization (WHO), WHO Guidelines for Drinking Water Quality, World Health Organization, Geneva, 2004, p. 311.
  5. V. Njoku, M.A. Islam, M. Asif, B. Hameed, Utilization of sky fruit husk agricultural waste to produce high quality activated carbon for the herbicide bentazon adsorption, Chem. Eng. J., 251 (2014) 183–191.
  6. A. Omri, A. Wali, M. Benzina, Adsorption of bentazon on activated carbon prepared from Lawsonia inermis wood: equilibrium, kinetic and thermodynamic studies, Arab. J. Chem., 9 (2016) 1729–1739.
  7. M. Shirzad-Siboni, A. Khataee, A. Hassani, S. Karaca, Preparation, characterization and application of a CTAB-modified nanoclay for the adsorption of an herbicide from aqueous solutions: kinetic and equilibrium studies, C.R. Chim., 18 (2015) 204–214.
  8. M. Gholami, M. Shirzad-Siboni, M. Farzadkia, J.-K. Yang, Synthesis, characterization, and application of ZnO/TiO2 nanocomposite for photocatalysis of a herbicide (Bentazon), Desal. Wat. Treat., 57 (2016) 13632–13644.
  9. N.A. Mir, M. Haque, A. Khan, M. Muneer, S. Vijayalakshmi, Photocatalytic degradation of herbicide bentazone in aqueous suspension of TiO2: mineralization, identification of intermediates and reaction pathways, Environ. Technol., 35 (2014) 407–415.
  10. S.D. Lambert, N.J. Graham, B.T. Croll, Degradation of selected herbicides in a lowland surface water by ozone and ozonehydrogen peroxide, Ozone Sci. Eng., 18 (1996) 251–269.
  11. A.K. Abdessalem, N. Bellakhal, N. Oturan, M. Dachraoui, M.A. Oturan, Treatment of a mixture of three pesticides by photoand electro-Fenton processes, Desalination, 250 (2010) 450–455.
  12. M. Peydayesh, P. Kazemi, A. Bandegi, T. Mohammadi, O. Bakhtiari, Treatment of bentazon herbicide solutions by vacuum membrane distillation, J. Water Process Eng., 8 (2015) 17–22.
  13. X. Wei, N. Gao, C. Li, Y. Deng, S. Zhou, L. Li, Zero-valent iron (ZVI) activation of persulfate (PS) for oxidation of bentazon in water, Chem. Eng. J., 285 (2016) 660–670.
  14. N. Daneshvar, A. Khataee, Removal of azo dye CI Acid Red 14 from contaminated water using Fenton, UV/H2O2, UV/H2O2/Fe (II), UV/H2O2/Fe (III) and UV/H2O2/Fe(III)/oxalate processes: a comparative study, J. Environ. Sci. Health, Part A Toxic/Hazard. Subst. Environ. Eng., 41 (2006) 315–328.
  15. A. Fujishima, T.N. Rao, D.A. Tryk, Titanium dioxide photocatalysis, J. Photochem. Photobiol., C, 1 (2000) 1–21.
  16. G. Moussavi, R. Khosravi, Preparation and characterization of a biochar from pistachio hull biomass and its catalytic potential for ozonation of water recalcitrant contaminants, Bioresour. Technol., 119 (2012) 66–71.
  17. A. Lv, C. Hu, Y. Nie, J. Qu, Catalytic ozonation of toxic pollutants over magnetic cobalt and manganese co-doped γ-Fe2O3, Appl. Catal., B, 100 (2010) 62–67.
  18. L. Yang, C. Hu, Y. Nie, J. Qu, Surface acidity and reactivity of β-FeOOH/Al2O3 for pharmaceuticals degradation with ozone: in situ ATR-FTIR studies, Appl. Catal. B, 97 (2010) 340–346.
  19. R. Darvishi Cheshmeh Soltani, A. Rezaee, A. Khataee, Combination of carbon black–ZnO/UV process with an electrochemical process equipped with a carbon black–PTFEcoated gas-diffusion cathode for removal of a textile dye, Ind. Eng. Chem. Res., 52 (2013) 14133–14142.
  20. P. Labhane, V. Huse, L. Patle, A. Chaudhari, G. Sonawane, Synthesis of Cu doped ZnO nanoparticles: crystallographic, optical, FTIR, morphological and photocatalytic study, J. Mater. Sci. Chem. Eng., 3 (2015) 39.
  21. N. Salah, A. Hameed, M. Aslam, S.S. Babkair, F. Bahabri, Photocatalytic activity of V doped ZnO nanoparticles thin films for the removal of 2-chlorophenol from the aquatic environment under natural sunlight exposure, J. Environ. Manage., 177 (2016) 53–64.
  22. M. Shirzad-Siboni, A. Khataee, S.W. Joo, Kinetics and equilibrium studies of removal of an azo dye from aqueous solution by adsorption onto scallop, J. Ind. Eng. Chem., 20 (2014) 610–615.
  23. T. Kawano, H. Imai, A simple preparation technique for shapecontrolled zinc oxide nanoparticles: formation of narrow sizedistributed nanorods using seeds in aqueous solutions, Colloids Surf., A, 319 (2008) 130–135.
  24. M. Shirzad-Siboni, M. Samarghandi, J.-K. Yang, S.-M. Lee, Photocatalytic removal of reactive black-5 dye from aqueous solution by UV irradiation in aqueous TiO2: equilibrium and kinetics study, J. Adv. Oxid. Technol., 14 (2011) 302–307.
  25. M. Shirzad-Siboni, M. Farrokhi, R. Darvishi Cheshmeh Soltani, A. Khataee, S. Tajassosi, Photocatalytic reduction of hexavalent chromium over ZnO nanorods immobilized on kaolin, Ind. Eng. Chem. Res., 53 (2014) 1079–1087.
  26. A. Mohagheghian, K. Ayagh, K. Godini, M. Shirzad-Siboni, Photocatalytic reduction of Cr(VI) from synthetic, real drinking waters and electroplating wastewater by synthesized aminofunctionalized Fe3O4–WO3 nanoparticles by visible light, J. Ind. Eng. Chem., 59 (2018) 169–183.
  27. APHA, AWWA, WEF, Standard Methods for the Examination of Water and Wastewater, 20th ed., American Public Health Association, Washington, D.C., USA, 2000.
  28. 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, Sep. Sci. Technol., 52 (2017) 2395–2406.
  29. N. Daneshvar, S. Aber, M.S. Seyed Dorraji, A.R. Khataee, M.H. Rasoulifard, Photocatalytic degradation of the insecticide diazinon in the presence of prepared nanocrystalline ZnO powders under irradiation of UV-C light, Sep. Purif. Technol., 58 (2007) 91–98.
  30. J.R. Abernathy, L.M. Wax, Bentazon mobility and adsorption in twelve Illinois soils, Weed Sci., 21 (1973) 224–227.
  31. 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.
  32. S.G. De Moraes, R.S. Freire, N. Duran, Degradation and toxicity reduction of textile effluent by combined photocatalytic and ozonation processes, Chemosphere, 40 (2000) 369–373.
  33. A. Alvares, C. Diaper, S. Parsons, Partial oxidation by ozone to remove recalcitrance from wastewaters – a review, Environ. Technol., 22 (2001) 409–427.
  34. G.G. Bessegato, J.C. Cardoso, B.F. da Silva, M.V.B. Zanoni, Combination of photoelectrocatalysis and ozonation: a novel and powerful approach applied in Acid Yellow 1 mineralization, Appl. Catal., B, 180 (2016) 161–168.
  35. F. Qi, W. Chu, B. Xu, Ozonation of phenacetin in associated with a magnetic catalyst CuFe2O4: the reaction and transformation, Chem. Eng. J., 262 (2015) 552–562.
  36. U. Von Gunten, Ozonation of drinking water: Part I. Oxidation kinetics and product formation, Water Res., 37 (2003) 1443–1467.
  37. B. Xu, F. Qi, J. Zhang, H. Li, D. Sun, D. Robert, Z. Chen, Cobalt modified red mud catalytic ozonation for the degradation of bezafibrate in water: catalyst surface properties characterization and reaction mechanism, Chem. Eng. J., 284 (2016) 942–952.
  38. Y.D. Shahamat, M. Farzadkia, S. Nasseri, A.H. Mahvi, M. Gholami, A. Esrafili, Magnetic heterogeneous catalytic ozonation: a new removal method for phenol in industrial wastewater, J. Environ. Health Sci. Eng., 12 (2014) 50.
  39. A. Rahmani, F. Barjasteh Askari, S.M. Asgari Gh, Degradation of reactive red 198 dye by catalytic ozonation using pumice and copper coated pumice, Fresenius Environ. Bull., 21 (2012) 2810–2817.
  40. G. Moussavi, M. Mahmoudi, Degradation and biodegradability improvement of the reactive red 198 azo dye using catalytic ozonation with MgO nanocrystals, Chem. Eng. J., 152 (2009) 1–7.
  41. W. Li, X. Lu, K. Xu, J. Qu, Z. Qiang, Cerium incorporated MCM-48 (Ce-MCM-48) as a catalyst to inhibit bromate formation during ozonation of bromide-containing water: efficacy and mechanism, Water Res., 86 (2015) 2–8.
  42. S.H. Lin, C.H. Wang, Ozonation of phenolic wastewater in a gas-induced reactor with a fixed granular activated carbon bed, Ind. Eng. Chem. Res., 42 (2003) 1648–1653.
  43. S. Dobaradran, R. Nabizaeh, A. Mahvi, A. Mesdaghinia, K. Naddafi, M. Yunesian, N. Rastkari, S. Nazmara, Survey on degradation rates of trichloroethylene in aqueous solutions by ultrasound, Iran. J. Environ. Health Sci. Eng., 7 (2010) 307–312.
  44. S. Dobaradaran, H. Lutze, A.H. Mahvi, T.C. Schmidt, Transformation efficiency and formation of transformation products during photochemical degradation of TCE and PCE at micromolar concentrations, J. Environ. Health Sci. Eng., 12 (2014) 16.
  45. F. Erol, T.A. Özbelge, Catalytic ozonation with non-polar bonded alumina phases for treatment of aqueous dye solutions in a semi-batch reactor, Chem. Eng. J., 139 (2008) 272–283.
  46. C.A. Guzman-Perez, J. Soltan, J. Robertson, Kinetics of catalytic ozonation of atrazine in the presence of activated carbon, Sep. Purif. Technol., 79 (2011) 8–14.
  47. A. Kagkoura, T. Skaltsas, N. Tagmatarchis, Transition metal chalcogenides/graphene ensembles for light‐induced energy applications, Chem. Eur. J., 23 (2017) 12967–12979.
  48. A. Khataee, T.S. Rad, M. Fathinia, The role of clinoptilolite nanosheets in catalytic ozonation process: insights into the degradation mechanism, kinetics and the toxicity, J. Taiwan Inst. Chem. Eng., 77 (2017) 205–215.
  49. J.H. Suh, M. Mohseni, A study on the relationship between biodegradability enhancement and oxidation of 1, 4-dioxane using ozone and hydrogen peroxide, Water Res., 38 (2004) 2596–2604.
  50. S. Mortazavi, G. Asgari, S. Hashemian, G. Moussavi, Degradation of humic acids through heterogeneous catalytic ozonation with bone charcoal, React. Kinet. Mech. Catal., 100 (2010) 471–485.
  51. N. Di Simone, P. Riccardi, N. Maggiano, A. Piacentani, M. D’Asta, A. Capelli, A. Caruso, Effect of folic acid on homocysteine-induced trophoblast apoptosis, Mol. Hum. Reprod., 10 (2004) 665–669.
  52. H. Ou, N. Gao, Y. Deng, H. Wang, H. Zhang, Inactivation and degradation of Microcystis aeruginosa by UV-C irradiation, Chemosphere, 85 (2011) 1192–1198.
  53. Y. Yang, H. Cao, P. Peng, H. Bo, Degradation and transformation of atrazine under catalyzed ozonation process with TiO2 as catalyst, J. Hazard. Mater., 279 (2014) 444–451.