References

  1. C.H. Nguyen, R.-S. Juang, Efficient removal of cationic dyes from water by a combined
    adsorption-photocatalysis process using platinum-doped titanate nanomaterials, J. Taiwan Inst. Chem. Eng., 99 (2019) 166–179.
  2. M. Roosta, M. Ghaedi, A. Daneshfar, R. Sahraei, A. Asghari, Optimization of combined ultrasonic assisted/tin sulfide nanoparticle loaded on activated carbon removal of erythrosine by response surface methodology, J. Ind. Eng. Chem., 21 (2015) 459–469.
  3. M.O. Dawodu, K.G. Akpomie, Evaluating the potential of a Nigerian soil as an adsorbent for tartrazine dye: isotherm, kinetic and thermodynamic studies, Alexandria Eng. J., 55 (2016) 3211–3218.
  4. M.R. Samarghandi, A. Dargahi, H.Z. Nasab, E. Ghahramani, S. Salehi, Degradation of azo dye Acid Red 14 (AR14) from aqueous solution using H2O2/nZVI and S2O82–/nZVI processes in the presence of UV irradiation, Water Environ. Res., 92 (2020) 1173–1183.
  5. S. Hisaindee, M.A. Meetani, M.A. Rauf, Application of LC-MS to the analysis of advanced oxidation process (AOP) degradation of dye products and reaction mechanisms, TrAC, Trends Anal. Chem., 49 (2013) 31–44.
  6. A. Peyghami, A. Moharrami, Y. Rashtbari, S. Afshin, M. Vosuoghi, A. Dargahi, Evaluation of the efficiency of magnetized clinoptilolite zeolite with Fe3O4 nanoparticles on the removal of basic violet 16 (BV16) dye from aqueous solutions, J. Dispersion Sci. Technol., (2021) 1947847, doi: 10.1080/01932691.2021.1947847.
  7. K. Hasani, M. Moradi, S.A. Mokhtari, H. Sadeghi, A. Dargahi, M. Vosoughi, Degradation of basic violet 16 dye by electroactivated persulfate process from aqueous solutions and toxicity assessment using microorganisms: determination of by-products, reaction kinetic and optimization using Box–Behnken design, Int. J. Chem. React. Eng., 19 (2021) 261–275.
  8. M.R. Samarghandi, A. Dargahi, A. Shabanloo, H.Z. Nasab, Y. Vaziri, A. Ansari, Electrochemical degradation of methylene blue dye using a graphite doped PbO2 anode: optimization of operational parameters, degradation pathway and improving the biodegradability of textile wastewater, Arabian J. Chem., 13 (2020) 6847–6864.
  9. T. Rasheed, M. Bilal, H.M.N. Iqbal, H. Hu, X. Zhang, Reaction mechanism and degradation pathway of rhodamine 6G by photocatalytic treatment, Water Air Soil Pollut., 228 (2017) 291–301.
  10. S. Kaur, S. Sharma, A. Umar, S. Singh, S.K. Mehta, S.K. Kansal, Solar light driven enhanced photocatalytic degradation of brilliant green dye based on ZnS quantum dots, Superlattices Microstruct., 103 (2017) 365–375.
  11. B. Costa-Angulo, J. Lara-Ramos, J. Diaz-Angulo, M.A. Mueses, F. Machuca-Martínez, Mechanistic model and optimization of the diclofenac degradation kinetic for ozonation processes intensification, Water, 13 (2021) 1670–1693.
  12. M.L.A. Ramalho, V.S. Madeira, I.L.O. Brasileiro, P.C. Fernandes, C.B. Barbosa, S. Arias, J.G.A Pacheco, Synthesis of mixed oxide Ti/Fe2O3 as solar light-induced photocatalyst for heterogeneous photo-Fenton like process, J. Photochem. Photobiol., A, 404 (2021) 112873, doi: 10.1016/j.jphotochem.2020.112873.
  13. A. Dargahi, M. Pirsaheb, S. Hazrati, M. Fazlzadehdavil, R. Khamutian, T. Amirian, Evaluating efficiency of H2O2 on removal of organic matter from drinking water, Desal. Water Treat., 54 (2015) 1589–1593.
  14. A. Rahmani, M. Leili, A. Seid-Mohammadi, A. Shabanloo, A. Ansari, D. Nematollahi, S. Alizadeh, Improved degradation of diuron herbicide and pesticide wastewater treatment in a three-dimensional electrochemical reactor equipped with PbO2 anodes and granular activated carbon particle electrodes, J. Cleaner Prod., 322 (2021) 129094, doi: 10.1016/j. jclepro.2021.129094.
  15. K. Hasani, S. Hosseini, H. Gholizadeh, A. Dargahi, M. Vosoughi, Enhancing the efficiency of electrochemical, Fenton, and electro-Fenton processes using SS316 and SS316/β-PbO2 anodes to remove oxytetracycline antibiotic from aquatic environments, Biomass Convers. Biorefin., (2021) 1–18,
    doi: 10.1007/s13399-021-01967-z.
  16. M.R. Samarghandi, J. Mehralipour, G. Azarian, K. Godini, A. Shabanlo, Decomposition of sodium dodecylbenzene sulfonate surfactant by electro/Fe2+-activated persulfate process from aqueous solutions, Global NEST J., 19 (2017) 115–121.
  17. A.R. Rahmani, A. Shabanloo, M. Fazlzadeh, Y. Poureshgh, M. Vanaeitabar, Optimization of sonochemical decomposition of ciprofloxacin antibiotic in US/PS/nZVI process by CCD-RSM method, Desal. Water Treat., 145 (2019) 300–308.
  18. A. Dargahi, H.R. Barzoki, M. Vosoughi, S.A. Mokhtari, Enhanced electrocatalytic degradation of
    2,4-dinitrophenol (2,4-DNP) in three-dimensional sono-electrochemical (3D/SEC) process equipped with Fe/SBA-15 nanocomposite particle electrodes: degradation pathway and application for real wastewater, Arabian J. Chem., 15 (2022) 103801, doi: 10.1016/j.arabjc.2022.103801.
  19. W.J. Do Nascimento Júnior, R.V.S. Aquino, A.A. Barbosa, O.R. Rocha, Development of a new PET flow reactor applied to food dyes removal with advanced oxidative processes, J. Water Process Eng., 31 (2019) 100283, doi: 10.1016/j.jwpe.2019.100823.
  20. N.S.C.S. Neves, A.A. Barbosa, I.L.S. Santana, P.M.N. Pereira, J.G.A. Pacheco, M. Benachour, O.R.S. Rocha, Treatment of bicomponent textile dyes using combined photocatalysis and adsorption process made from residue-based reactor and adsorbent material, Chem. Eng. Commun., 208 (2020) 1523–1542.
  21. L.N. Ribeiro, A.C. Fonseca, E.F. Silva, E.D. Oliveira, A.T. Ribeiro, L.C. Maranhão, J.G.A. Pacheco, G. Machado, L.C. Almeida, Residue-based TiO2/PET photocatalytic films for the degradation of textile dyes: a step in the development of green monolith reactors, Chem. Eng. Process., 147 (2020) 107792–107800.
  22. S. Kumawat, K. Meghwal, S. Kumar, R. Ameta, C. Ameta, Kinetics of sonophotocatalytic degradation of an anionic dye nigrosine with doped and undoped zinc oxide, Water Sci. Technol., 80 (2019) 1466–1475.
  23. S.M. Mirmousaei, M. Peyravi, M. Khajouei, M. Jahanshahi, S. Khalili, Preparation and characterization of
    nano-filtration and its photocatalytic abilities via pre-coated and self-forming dynamic membranes developed by ZnO, PAC and chitosan, Water Sci. Technol., 80 (2019) 2273–2283.
  24. R.D. Shinde, P.S. Tambade, M.G. Chaskar, K.M. Gayade, Photocatalytic degradation of dyes in water by analytical reagent grades ZnO, TiO2 and SnO2: a comparative study, Drinking Water Eng. Sci., 10 (2017) 109–117.
  25. S. Behzadi, B. Nonahal, S.J. Royaee, A.A. Asadi, TiO2/SiO2/Fe3O4 magnetic nanoparticles synthesis and application in methyl orange UV photocatalytic removal, Water Sci. Technol., 82 (2020) 2432–2445.
  26. X. Shen, Y. Shi, H. Shao, Y. Liu, Y. Zhai, Synthesis and photocatalytic degradation ability evaluation for rhodamine B of ZnO@SiO2 composite with flower-like structure, Water Sci. Technol., 80 (2019) 1986–1995.
  27. Z. Youssef, L. Colombeau, N. Yesmurzayeva, F. Baros, R. Vanderesse, T. Hamieh, J. Toufaily, C. Frochot, T. Roques-Carmes, S. Acherar, Dye-sensitized nanoparticles for heterogeneous photocatalysis: cases studies with TiO2, ZnO, fullerene and graphene for water purification, Dyes Pigm., 159 (2018) 49–71.
  28. N. Daneshvar, S. Aber, F. Hosseinzadeh, Study of C.I. Acid Orange 7 removal in contaminated water by photo oxidation processes, Global NEST J., 10 (2008) 16–23.
  29. V. Anand, V.C. Srivastava, Photocatalytic degradation of nitrobenzene and azo dye using nanoparticles prepared by electrochemical method, J. Sci. Ind. Res., 75 (2016) 632–637.
  30. A.A. Barbosa, R.V.S. Aquino, N.S.C.S. Neves, R.F. Dantas, M.M.M.B. Duarte, O.R.S. Rocha, Kinetic study of dye removal using TiO2 supported on polyethylene terephthalate by advanced oxidation processes through neural networks, Water Sci. Technol., 79 (2019) 1134–1143.
  31. R.V.S. Aquino, A.A. Barbosa, L.B. Ribeiro, A.F.B. Oliveira, J.P. Silva, P.M. Azoubel, O.R.S. Rocha, Degradation of leaf green dye by heterogeneous photocatalysis with TiO2 over a polyethylene terephthalate plate, Chem. Pap., 73 (2019) 2501–2512.
  32. S.C. Lenore, E.G. Arnold, D.E. Andrew, Standard Methods for the Examination of Water and Wastewater, American Public Health Association, New York, 1998.
  33. L.M. Utzig, R.M. Lima, M.F. Gomes, W.A. Ramsdorf, L.R.R. Martins, M.V. Liz, A.M. Freitas, Ecotoxicity response of chlorpyrifos in Aedes aegypti larvae and Lactuca sativa seeds after UV/H2O2 and UVC oxidation, Ecotoxicol. Environ. Saf., 169 (2019) 449–456.
  34. D. Štrbac, C.A. Aggelopoulos, G. Štrbac, M. Dimitropoulos, M. Novaković, T. Ivetić, S.N. Yannopoulos, Photocatalytic degradation of naproxen and methylene blue: comparison between ZnO, TiO2 and their mixture, Process Saf. Environ. Prot., 113 (2018) 174–183.
  35. C.A. Aggelopoulos, M. Dimitropoulos, A. Govatsi, L. Sygellou, C.D. Tsakiroglou, S.N. Yannopoulos, Influence of the surfaceto- bulk defects ratio of ZnO and TiO2 on their UV-mediated photocatalytic activity, Appl. Catal., B, 205 (2017) 292–301.
  36. D. Tassalit, S. Lebouachera, S. Dechir, N. Chekir, O. Benhabiles, F. Bentahar, Comparison between TiO2 and ZnO photocatalytic efficiency for the degradation of tartrazine contaminant in water, Int. J. Environ. Sci., 1 (2016) 357–364.
  37. I.O. Brahim, M. Belmedani, H. Hadoun, A. Belgacem, The photocatalytic degradation kinetics of food dye in aqueous solution under UV/ZnO system, React. Kinet. Mech. Catal., 133 (2021) 1075–1095.
  38. A.A. Barbosa, R.V.S. Aquino, M.G. Silva, W.J. Nascimento Júnior, M.M.M.B. Duarte, R.F. Dantas, O.R.S. Rocha, New aluminum mesh from recyclable material for immobilization of TiO2 in heterogeneous photocatalysis, Can. J. Chem. Eng., 98 (2020) 1124–1138.
  39. G.E. Nascimento, V.O.M. Cavalcanti, R.M.R. Santana, D.C.S. Sales, J.M. Rodríguez-Díaz, D.C. Napoleão, M.M.M.B. Duarte, Degradation of a sunset yellow and tartrazine dye mixture: optimization using statistical design and empirical mathematical modeling, Water Air Soil Pollut., 231 (2020) 254,
    doi: 10.1007/s11270-020-04547-5.
  40. K.M. Lee, C.W. Lai, K.S. Ngai, J.C. Juan, Recent developments of zinc oxide based photocatalyst in water treatment technology: a review, Water Res., 88 (2016) 428–448.
  41. M.M. Uddin, M.A. Hasnat, A.J.F. Samed, R.K. Majumdar, Influence of TiO2 and ZnO photocatalysts on adsorption and degradation behaviour of erythrosine, Dyes Pigm., 75 (2007) 207–212.
  42. P. Bansal, N. Bhullar, D. Sud, Studies on photodegradation of malachite green using ZnO/TiO2 photocatalyst, Desal. Water Treat., 12 (2009) 108–113.
  43. M.M. Mahmoudi, R. Khaghani, A. Dargahi, G.M. Tehrani, Electrochemical degradation of diazinon from aqueous media using graphite anode: effect of parameters, mineralisation, reaction kinetic, degradation pathway and optimisation using central composite design, Int. J. Environ. Anal. Chem., 102 (2020) 1–26.
  44. A. Seid-Mohammadi, G. Asgarai, Z. Ghorbanian, A. Dargahi, The removal of cephalexin antibiotic in aqueous solutions by ultrasonic waves/hydrogen peroxide/nickel oxide nanoparticles (US/H2O2/NiO) hybrid process, Sep. Sci. Technol., 55 (2019) 1–11.
  45. A.R. Rahmani, A. Shabanloo, M. Fazlzadeh, Y. Poureshgha, H. Rezaeivahidian, Degradation of Acid Blue 113 in aqueous solutions by the electrochemical advanced oxidation in the presence of persulfate, Desal. Water Treat., 59 (2017) 202–209.
  46. G. Tekin, G. Ersöz, S. Atalay, Visible light assisted Fenton oxidation of tartrazine using metal doped bismuth oxyhalides as novel photocatalysts, J. Environ. Manage., 228 (2018) 441–450.
  47. A. Navid, A.A. Parviz, T.M. Saber, H.S. Waqif, D. Maher, P. Sanaz, Synthesis of ZnO-nanoparticles by microwave assisted sol-gel method and its role in photocatalytic degradation of food dye tartrazine (Acid Yellow 23), Int. J. Nano Dimens., 8 (2017) 241–249.
  48. R.A. Devi, B. Kavitha, M. Rajarajan, A. Suganthi, An ecofriendly highly stable and efficient NiC-S codoped wurtzite ZnO nanoplate: a smart photocatalyst for the quick removal of food dye under solar light irradiation, Sep. Sci. Technol., 53 (2018) 2456–2467.
  49. Y. Luo, J. Liang, G. Zeng, M. Chen, D. Mo, G. Li, D. Zhang, Seed germination test for toxicity evaluation of compost: its roles, problems and prospects, Waste Manage., 71 (2018) 109–114.
  50. F. Amato, J.L. González-Hernández, J. Havel, Artificial neural networks combined with experimental design:
    a “soft” approach for chemical kinetics, Talanta, 93 (2012) 72–78.
  51. A.R.S. Feliciano, A.L.A. Lucena, R.M.R. Santana, L.E.M.C. Zaidan, P.M. Silva, T.H. Napoleão, M.M.M.B. Duarte, D.C. Napoleão, Advanced oxidation processes employment for the degradation of lamivudine: kinetic assessment, toxicity study and mathematical modeling, Water Qual. Res. J., 55 (2020) 249–260.