References

  1. N. Khatoon, A. Jamal, M.I. Ali, Polymeric pollutant biodegradation through microbial oxidoreductase: a better strategy to safe environment, Int. J. Biol. Macromol., 105 (2017) 9–16.
  2. M. Sillanpää, M.C. Ncibi, A. Matilainen, M. Vepsäläinen, Removal of natural organic matter in drinking water treatment by coagulation: a comprehensive review, Chemosphere, 190 (2018) 54–71.
  3. I. Anastopoulos, A. Bhatnagar, B.H. Hameed, Y.S. Ok, M. Omirou, A review on waste-derived adsorbents from sugar industry for pollutant removal in water and wastewater, J. Mol. Liq., 240 (2017) 179–188.
  4. S.O. Ganiyu, E.D. van Hullebusch, M. Cretin, G. Esposito, M.A. Oturan, Coupling of membrane filtration and advanced oxidation processes for removal of pharmaceutical residues: a critical review, Sep. Purif. Technol., 156 (2015) 891–914.
  5. M. Cheng, G. Zeng, D. Huang, C. Lai, P. Xu, C. Zhang, Y. Liu, Hydroxyl radicals based advanced oxidation processes (AOPs) for remediation of soils contaminated with organic compounds: a review, Chem. Eng. J., 284 (2016) 582–598.
  6. M. Kaur, C.M. Nagaraja, Template-free synthesis of Zn1–xCdxS nanocrystals with tunable band structure for efficient water splitting and reduction of nitroaromatics in water, ACS Sustain. Chem. Eng., 5 (2017) 4293–4303.
  7. N. Soltani, E. Saion, M.Z. Hussein, M. Erfani, A. Abedini, G. Bahmanrokh, M. Navasery, P. Vaziri, Visible light-induced degradation of methylene blue in the presence of photocatalytic ZnS and CdS nanoparticles, Int. J. Mol. Sci., 13 (2012) 12242–12258.
  8. N. Soltani, E. Saion, W.M.M. Yunus, M. Erfani, M. Navasery, G. Bahmanrokh, K. Rezaee, Enhancement of visible light photocatalytic activity of ZnS and CdS nanoparticles based on organic and inorganic coating, Appl. Surf. Sci., 290 (2014) 440–447.
  9. M.R.D. Khaki, M.S. Shafeeyan, A.A.A. Raman, W.M.A.W. Daud, Application of doped photocatalysts for organic pollutant degradation – a review, J. Environ. Manage., 198 (2017) 78–94.
  10. A.P. Gaikwad, D. Tyagi, C.A. Betty, R. Sasikala, Photocatalytic and photo electrochemical properties of cadmium zinc sulfide solid solution in the presence of Pt and RuS2 dual co-catalysts, Appl. Catal., A, 517 (2016) 91–99.
  11. X. Li, D.-E. Yin, S.-Z. Kang, J. Mu, J. Wang, G. Li, Preparation of cadmium-zinc sulfide nanoparticles modified titanate nanotubes with high visible-light photocatalytic activity, Colloids Surf., A, 384 (2011) 749–751.
  12. Y. Yang, Y.S. Ok, K.-H. Kim, E.E. Kwon, Y.F. Tsang, Occurrences and removal of pharmaceuticals and personal care products (PPCPs) in drinking water and water/sewage treatment plants: a review, Sci. Total Environ., 596 (2017) 303–320.
  13. S.M. Lau, T.M. McGuire, M.L. van Driel, Consumer concerns about paracetamol: a retrospective analysis of a medicines call centre, BMJ Open Sci., 6 (2016) 1–8.
  14. L. Yang, L.E. Yu, M.B. Ray, Degradation of paracetamol in aqueous solutions by TiO2 photocatalysis, Water Res., 42 (2008) 3480–3488.
  15. A.-M. Abdel-Wahab, A.-S. Al-Shirbini, O. Mohamed, O. Nasr, Photocatalytic degradation of paracetamol over magnetic flower-like TiO2/Fe2O3 core-shell nanostructures, J. Photochem. Photobiol., A, 347 (2017) 186–198.
  16. N. Hamdi El Najjar, A. Touffet, M. Deborde, R. Journel, N. Karpel Vel Leitner, Kinetics of paracetamol oxidation by ozone and hydroxyl radicals, formation of transformation products and toxicity, Sep. Purif. Technol., 136 (2014) 137–143.
  17. M. Shakir, M. Faraz, M.A. Sherwani, S.I. Al-Resayes, Photocatalytic degradation of the paracetamol drug using lanthanum doped ZnO nanoparticles and their in-vitro cytotoxicity assay, J. Lumin., 176 (2016) 159–167.
  18. M. Tobajas, C. Belver, J.J. Rodriguez, Degradation of emerging pollutants in water under solar irradiation using novel TiO2-ZnO/clay nanoarchitectures, Chem. Eng. J., 309 (2017) 596–606.
  19. E. Chiavazza, S. Berto, A. Giacomino, M. Malandrino, C. Barolo, E. Prenesti, D. Vione, O. Abollino, Electrocatalysis in the oxidation of acetaminophen with an electrochemically activated glassy carbon electrode, Electrochim. Acta, 192 (2016) 139–147.
  20. E. Villaroel, J. Silva-Agredo, C. Petrier, G. Taborda, R.A. Torres-Palma, Ultrasonic degradation of acetaminophen in water: effect of sonochemical parameters and water matrix, Ultrason. Sonochem., 21 (2014) 1763–1769.
  21. Z.-Q. Qin, F.-J. Zhang, Surface decorated CdxZn1−xS cluster with CdS quantum dot as sensitizer for highly photocatalytic efficiency, Appl. Surf. Sci., 285 (2013) 912–917.
  22. Z.-X. Yang, P. Zhang, W. Zhong, Y. Deng, C.-T. Au, Y.-W. Du, Design, growth, and characterization of morphology-tunable CdxZn1–xS nanostructures generated by a one-step thermal evaporation process, Cryst. Eng. Comm., 14 (2012) 4298–4305.
  23. S. Rengaraj, Q. Kezhen, P.S.B. Soundra, M. Mohammed, A.W. Bushra, A.L. Haider, A.K.S. MZ, K. Younghun, S. Mika, Morphology-controlled synthesis of ZnxCd1-xS solid solutions: an efficient solar light active photocatalyst for the degradation of 2,4,6-trichlorophenol, J. Environ. Prot., 7 (2016) 1605.
  24. M.A. Rauf, S.S. Ashraf, Fundamental principles and application of heterogeneous photocatalytic degradation of dyes in solution, Chem. Eng. J., 151 (2009) 10–18.
  25. V.H.-T. Thi, B.-K. Lee, Effective photocatalytic degradation of paracetamol using La-doped ZnO photocatalyst under visible light irradiation, Mater. Res. Bull., 96 (2017) 171–182.
  26. N. Villota, J.M. Lomas, L.M. Camarero, Study of the paracetamol degradation pathway that generates color and turbidity in oxidized wastewaters by photo-Fenton technology, J. Photochem. Photobiol., A, 329 (2016) 113–119.
  27. E. Moctezuma, E. Leyva, C.A. Aguilar, R.A. Luna, C. Montalvo, Photocatalytic degradation of paracetamol: intermediates and total reaction mechanism, J. Hazard. Mater., 243 (2012) 130–138.
  28. F. Wishart James, B.S.M. Rao, Recent Trends in Radiation Chemistry, World Scientific Publishing Co., Singapore, 2012.
  29. L. Wojnárovits, T. Tóth, E. Takács, Critical evaluation of rate coefficients for hydroxyl radical reactions with antibiotics: a review, Crit. Rev. Environ. Sci. Technol., 48 (2018) 1–37.
  30. 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.