References

  1. A. Iftikhar, M.S. Khan, U. Rashid, Q. Mahmood, H. Zafar, M. Bilal, N. Riaz, Influence of metallic species for efficient photocatalytic water disinfection: bactericidal mechanism of in vitro results using docking simulation, Environ. Sci. Pollut. Res., 27 (2020) 39819–39831.
  2. T. Shindhal, P. Rakholiya, S. Varjani, A. Pandey, H.H. Ngo, W. Guo, H.Y. Ng, M.J. Taherzadeh, A critical review on advances in the practices and perspectives for the treatment of dye industry wastewater, Bioengineered, 12 (2021) 70–87.
  3. O. Ashrafi, L. Yerushalmi, F. Haghighat, Wastewater treatment in the pulp-and-paper industry: a review of treatment processes and the associated greenhouse gas emission, J. Environ. Manage., 158 (2015) 146–157.
  4. P. Sharma, S. Tripathi, N. Vadakedath, R. Chandra, In-situ toxicity assessment of pulp and paper industry wastewater on Trigonella foenum-graecum L: potential source of cytotoxicity and chromosomal damage, Environ. Technol. Innovation, 21 (2021) 101251, doi: 10.1016/j.eti.2020.101251.
  5. G. Ginni, S. Adishkumar, J. Rajesh Banu, N. Yogalakshmi, Treatment of pulp and paper mill wastewater by solar photo- Fenton process, Desal. Water Treat., 52 (2014) 2457–2464.
  6. Z.A. Khan, S.R. Chowdhury, B. Mitra, M.S. Mozumder, A.I. Elhaj, B.A. Salami, M.M. Rahman, S.M. Rahman, Analysis of industrial symbiosis case studies and its potential in Saudi Arabia, J. Cleaner Prod., 385 (2023) 135536, doi: 10.1016/j.jclepro.2022.135536.
  7. Mandeep, G.K. Gupta, P.S. Gupta, Insights into the resources generation from pulp and paper industry wastes: challenges, perspectives and innovations, Bioresour. Technol., 297 (2020) 122496, doi: 10.1016/j.biortech.2019.122496.
  8. P. Bajpai, Pulp and Paper Making Processes, In Environmentally Benign Pulping Cham: Springer International Publishing, 2023, pp. 7–21.
  9. T.Z. Mahmoudabadi, M.H. Ehrampoush, P. Talebi, R. Fouladi- Fard, H. Eslami, Comparison of poly ferric chloride and poly titanium tetrachloride in coagulation and flocculation process for paper and cardboard wastewater treatment, Environ. Sci. Pollut. Res., 28 (2021) 27262–27272.
  10. I. Oller, S. Malato, J.A. Sánchez-Pérez, Combination of advanced oxidation processes and biological treatments for wastewater decontamination—a review, Sci. Total Environ., 409 (2011) 4141–4166.
  11. N. Pandey, C. Thakur, Study on treatment of paper mill wastewater by electrocoagulation and its sludge analysis, Chem. Data Collect., 27 (2020) 100390, doi: 10.1016/j.cdc.2020.100390.
  12. D. Hermosilla, N. Merayo, R. Ordóñez, Á. Blanco, Optimization of conventional Fenton and ultraviolet-assisted oxidation processes for the treatment of reverse osmosis retentate from a paper mill, J. Waste Manage., 32 (2012) 1236–1243.
  13. E. Domingues, E. Fernandes, J. Gomes, R.C. Martins, Advanced oxidation processes perspective regarding swine wastewater treatment, Sci. Total Environ., 776 (2021) 145958, doi: 10.1016/j.scitotenv.2021.145958.
  14. P.C. Lindholm-Lehto, J.S. Knuutinen, H.S.J. Ahkola, S.H. Herve, Refractory organic pollutants and toxicity in pulp and paper mill wastewaters, Environ. Sci. Pollut. Res., 22 (2015) 6473–6499.
  15. I. Haq, P. Mazumder, A.S. Kalamdhad, Recent advances in removal of lignin from paper industry wastewater and its industrial applications – a review, Bioresour. Technol., 312 (2020) 123636, doi: 10.1016/j.biortech.2020.123636.
  16. S. Vilhunen, UVC Irradiation Based Water Treatment: A Study of UV Light Emitting Diodes, Atomic Layer Deposited TiO2 and Novel Applications, Dissertations in Forestry and Natural Sciences, 2010.
  17. M. Usman, O. Monfort, S. Gowrisankaran, B.H. Hameed, K. Hanna, M. Al-Abri, Dual functional materials capable of integrating adsorption and Fenton-based oxidation processes for highly efficient removal of pharmaceutical contaminants, J. Water Process Eng., 52 (2023) 103566, doi: 10.1016/j.jwpe.2023.103566.
  18. B.H. Diya’uddeen, W.M.A.W. Daud, A.R. Abdul Aziz, Treatment technologies for petroleum refinery effluents: a review, Process Saf. Environ. Prot., 89 (2011) 95–105.
  19. P.M. Deepti, M.K. Purkait, Chapter 4 – Emerging Technologies and Their Advancements Toward Wastewater Treatment from Various Industries, Emerging Technologies in Wastewater Treatment, CRC Press, 2023, p. 51.
  20. K. Eskelinen, H. Särkkä, T.A. Kurniawan, M.E.T. Sillanpää, Removal of recalcitrant contaminants from bleaching effluents in pulp and paper mills using ultrasonic irradiation and Fenton-like oxidation, electrochemical treatment, and/or chemical precipitation: a comparative study, Desalination, 255 (2010) 179–187.
  21. R. Matta, K. Hanna, S. Chiron, Fenton-like oxidation of 2,4,6-trinitrotoluene using different iron minerals, Sci. Total Environ., 385 (2007) 242–251.
  22. R. Andreozzi, V. Caprio, A. Insola, R. Marotta, Advanced oxidation processes (AOP) for water purification and recovery, Catal. Today, 53 (1999) 51–59.
  23. R. Javaid, U.Y. Qazi, Catalytic oxidation process for the degradation of synthetic dyes: an overview, Int. J. Environ. Res. Public Health, 16 (2019) 2066, doi: 10.3390/ijerph16112066.
  24. M. Srivastav, M. Gupta, S.K. Agrahari, P. Detwal, Removal of refractory organic compounds from wastewater by various advanced oxidation process – a review, Curr. Environ. Eng., 6 (2019) 8–16.
  25. M. Pérez, F. Torrades, J.A. Garcı́a-Hortal, X. Domènech, J. Peral, Removal of organic contaminants in paper pulp treatment effluents under Fenton and photo-Fenton conditions, Appl. Catal., B, 36 (2002) 63–74.
  26. M.F. Sevimli, Post-treatment of pulp and paper industry wastewater by advanced oxidation processes, Ozone: Sci. Eng., 27 (2005) 37–43.
  27. M. Xu, Q. Wang, Y. Hao, Removal of organic carbon from wastepaper pulp effluent by lab-scale solar photo-Fenton process, J. Hazard. Mater., 148 (2007) 103–109.
  28. APHA, WEF, Standard Methods for the Examination of Water and Wastewater, National Government Publication, Washington, DC, APHA, 2007, WEF, 2005.
  29. U. Abbasi, Z.A. Bhatti, F. Maqbool, M.T. Hayat, Faridullah, B. Aslam, A. Shaheen, Q. Mahmood, T.S. AlGarni, Chemidegradation of polychlorinated biphenyls from transformer oil wastewater, Int. J. Environ. Sci. Technol., 19 (2022) 407–420.
  30. D. Prządo, P. Kafarski, M. Steininger, Studies on degradation of polychlorinated biphenyls by means of Fenton’s reagent, Pol. J. Environ. Stud., 16 (2007) 881–887.
  31. T. Azuma, Yoshiki, M. Azuma, Chemical degradation of polychlorinated biphenyls by the UV-Fe2+/Fe3+-H2O2 system and its application for polychlorinated biphenyl-polluted electric insulating oil, J. Health Sci., 57 (2011) 442–447.
  32. T.S. Jamil, M.Y. Ghaly, I.E. El-Seesy, E.R. Souaya, R.A. Nasr, A comparative study among different photochemical oxidation processes to enhance the biodegradability of paper mill wastewater, J. Hazard. Mater., 185 (2011) 353–358.
  33. C.-C. Su, C.-M. Chen, J. Anotai, M.-C. Lu, Removal of monoethanolamine and phosphate from thin-film transistor liquid crystal display (TFT-LCD) wastewater by the fluidizedbed Fenton process, J. Chem. Eng., 222 (2013) 128–135.
  34. N. Ertugay, F.N. Acar, Removal of COD and color from Direct blue 71 azo dye wastewater by Fenton’s oxidation: kinetic study, Arabian J. Chem., 10 (2017) S1158–S1163.
  35. M.Y. Ghaly, G. Härtel, R. Mayer, R. Haseneder, Photochemical oxidation of p-chlorophenol by UV/H2O2 and photo-Fenton process. A comparative study, J. Waste Manage., 21 (2001) 41–47.
  36. M.R. Samarghandi, B.G. Khojasteh, Application of photo-Fenton process for the removal of nitrate from aqueous solutions, Jundishapur J. Health Sci., 5 (2013) 99–106.
  37. Y. Ahmed, Z. Yaakob, P. Akhtar, K. Sopian, Production of biogas and performance evaluation of existing treatment processes in palm oil mill effluent (POME), Renewable Sustainable Energy Rev., 42 (2015) 1260–1278.
  38. N. Abedinzadeh, M. Shariat, S.M. Monavari, A. Pendashteh, Evaluation of color and COD removal by Fenton from biologically (SBR) pre-treated pulp and paper wastewater, Process Saf. Environ. Prot., 116 (2018) 82–91.
  39. M.R. Apolinário da Silva, E. de O. Rodrigues, M. Espanhol-Soares, F.S. Silva, M.M. Kondo, R. Gimenes, Application of Fenton process to remove organic matter and PCBs from waste (fuller’s earth) contaminated with insulating oil, Environ. Technol., 40 (2019) 1298–1305.
  40. J. Zhai, H. Ma, J. Liao, M.H. Rahaman, Z. Yang, Z. Chen, Comparison of Fenton, ultraviolet–Fenton and ultrasonic–Fenton processes on organics and colour removal from pretreated natural gas produced water, Int. J. Environ. Sci. Technol., 15 (2018) 2411–2422.
  41. G. Ran, Q. Ran, Removal of refractory organics in dinitrodiazophenol industrial wastewater by an ultravioletcoupled Fenton process, RSC Adv., 9 (2019) 25414–25422.
  42. E. GilPavas, I. Dobrosz-Gómez, M.Á. Gómez-García, Coagulation-flocculation sequential with Fenton or photo- Fenton processes as an alternative for the industrial textile wastewater treatment, J. Environ. Manage., 191 (2017) 189–197.
  43. R.F. Gusa, D.N. Sari, F. Afriani, W. Sunanda, Y. Tiandho, Removing BOD, COD, and decolorization of Batik Cual wastewater using Fenton mechanism, Jurnal ilmiah pendidikan fisika Al-Biruni, 10 (2021) 139–148.
  44. W. Atima, BOD dan COD sebagai parameter pencemaran air dan baku mutu air limbah, PLoS Biol., 4 (2015) 83–93.
  45. S. Lim, C.S. McArdell, U.V. Gunten, Reactions of aliphatic amines with ozone: kinetics and mechanisms, Water Res., 157 (2019) 514–528.
  46. A. Altin, An alternative type of photoelectro-Fenton process for the treatment of landfill leachate, Sep. Purif. Technol., 61 (2008) 391–397.
  47. M.Y.A. Mollah, R. Schennach, J.R. Parga, D.L. Cocke, Electrocoagulation (EC)—science and applications, J. Hazard. Mater., 84 (2001) 29–41.
  48. A. Barwal, R. Chaudhary, Effectiveness of solar photo‐Fenton process for simultaneous detoxification of heavy metals and disinfection in municipal wastewater by using response surface method, Environ. Prog. Sustainable Energy, 36 (2017) 448–459.
  49. M.A. Barakat, New trends in removing heavy metals from industrial wastewater, Arabian J. Chem., 4 (2011) 361–377.