References

  1. R.P. Schwarzenbach, T. Egli, T.B. Hofstetter, U. von Gunten, B. Wehrli, Global water pollution and human health, Annu. Rev. Environ. Resour., 35 (2010) 109–136.
  2. A. Azizullah, M.N.K. Khattak, P. Richter, D.P. Häder, Water pollution in Pakistan and its impact on public health – a review, Environ. Int., 37 (2011) 479–497.
  3. 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, Sci. Total Environ., 329 (2004) 99–113.
  4. S.J. Hoeger, B.C. Hitzfeld, D.R. Dietrich, Occurrence and elimination of cyanobacterial toxins in drinking water treatment plants, Toxicol. Appl. Pharmacol., 203 (2005) 231–242.
  5. A.A. Gbolade, Inventory of antidiabetic plants in selected districts of Lagos State, Nigeria, J. Ethnopharmacol., 121 (2009) 135–139.
  6. J.P. Sumpter, Pharmaceuticals in the Environment: Moving from a Problem to a Solution, Green and Sustainable Pharmacy, Springer Berlin Heidelberg, 2010.
  7. M.P. Ormad, N. Miguel, A. Claver, J.M. Matesanz, J.L. Ovelleiro, Pesticides removal in the process of drinking water production, Chemosphere, 71 (2008) 97–106.
  8. M. Abdennouri, M. Baalala, A. Galadi, M. El Makhfouk, M. Bensitel, K. Nohair, M. Sadiq, A. Boussaoud, N. Barka, Photocatalytic degradations of pesticides by titanium dioxide and titanium pillared purified clays, Arabian J. Chem., 9 (2016) 313–318.
  9. C. de L. da N. Cuhna, A.C. Scudelari, P.C.C. Rosman, Using Modelling Techniques to Assess Sewage Pollution in the Potengi River Estuary, Brazil, Water and Society III, WIT Transactions on Ecology and the Environment, Vol. 200, 2015, pp. 237–248.
  10. N. Hudson, A. Baker, D. Reynolds, Fluorescence analysis of dissolved organic matter in natural, waste and polluted waters–a review, River Res. Appl., 23 (2007) 631–649.
  11. H.C. Kim, M.J. Yu, Characterization of natural organic matter in conventional water treatment processes for selection of treatment processes focused on DBPs control, Water Res., 39 (2005) 4779–4789.
  12. S.D. Faust, O.M. Aly, Adsorption Processes for Water Treatment, Elsevier, 2013.
  13. I. Ali, New generation adsorbents for water treatment, Chem. Rev., 112 (2012) 5073–5091.
  14. O. Hamdaoui, E. Naffrechoux, Modeling of adsorption isotherms of phenol and chlorophenols onto granular activated carbon: Part I. Two-parameter models and equations allowing determination of thermodynamic parameters, J. Hazard. Mater., 147 (2007) 381–394.
  15. S. Velten, D.R. Knappe, J. Traber, H.P. Kaiser, U. Von Gunten, M. Boller, S. Meylan, Characterization of natural organic matter adsorption in granular activated carbon adsorbers, Water Res., 45 (2011) 3951–3959.
  16. H. Hyung, J.H. Kim, Natural organic matter (NOM) adsorption to multi-walled carbon nanotubes: effect of NOM characteristics and water quality parameters, Environ. Sci. Technol., 42 (2008) 4416–4421.
  17. A. Matilainen, M. Vepsäläinen, M. Sillanpää, Natural organic matter removal by coagulation during drinking water treatment: a review, Adv. Colloid Interface Sci., 159 (2010) 189–197.
  18. L. Guzzella, D. Feretti, S. Monarca, Advanced oxidation and adsorption technologies for organic micropollutant removal from lake water used as drinking-water supply, Water Res., 36 (2002) 4307–4318.
  19. C. Adams, Y. Wang, K. Loftin, M. Meyer, Removal of antibiotics from surface and distilled water in conventional water treatment processes, J. Environ. Eng., 128 (2002) 253–260.
  20. S. Esplugas, D.M. Bila, L.G.T. Krause, M. Dezotti, Ozonation and advanced oxidation technologies to remove endocrine disrupting chemicals (EDCs) and pharmaceuticals and personal care products (PPCPs) in water effluents, J. Hazard. Mater., 149 (2007) 631–642.
  21. J. Altmann, A.S. Ruhl, F. Zietzschmann, M. Jekel, Direct comparison of ozonation and adsorption onto powdered activated carbon for micropollutant removal in advanced wastewater treatment, Water Res., 55 (2014) 185–193.
  22. D.R. Simpson, Biofilm processes in biologically active carbon water purification, Water Res., 42 (2008) 2839–2848.
  23. S.M. Korotta-Gamage, A. Sathasivan, A review: potential and challenges of biologically activated carbon to remove natural organic matter in drinking water purification process, Chemosphere, 167 (2017) 120–138.
  24. J. Altmann, D. Rehfeld, K. Trader, A. Sperlich, M. Jekel, Combination of granular activated carbon adsorption and deep-bed filtration as a single advanced wastewater treatment step for organic micropollutant and phosphorus removal, Water Res., 92 (2016) 131–139.
  25. A. Vinu, V. Murugesan, O. Tangermann, M. Hartmann, Adsorption of cytochrome c on mesoporous molecular sieves: influence of pH, pore diameter, and aluminium incorporation, Chem. Mater., 16 (2004) 3056–3065.
  26. Y.S. Al-Degs, M.I. El-Barghouthi, A.H. El-Sheikh, G.M. Walker, Effect of solution pH, ionic strength, and temperature on adsorption behavior of reactive dyes on activated carbon, Dyes Pigm., 77 (2008) 16–23.
  27. T.A. Kurniawan, W.H. Lo, G.Y. Chan, Degradation of recalcitrant compounds from stabilized landfill leachate using a combination of ozone-GAC adsorption treatment, J. Hazard. Mater., 137 (2006) 443–455.
  28. L. Hernández-Leal, H. Temmink, G. Zeeman, C.J.N. Buisman, Removal of micropollutants from aerobically treated grey water via ozone and activated carbon, Water Res., 45 (2011) 2887–2896.
  29. R.P. Galapate, A.U. Baes, M. Okada, Transformation of dissolved organic matter during ozonation: effects on trihalomethane formation potential, Water Res., 35 (2001) 2201–2206.
  30. I. Delpla, A.-V. Jung, E. Bauers, M. Clement, O. Thomas, Impacts of climate change on surface quality in relation to drinking water production, Environ. Int., 35 (2009) 1225–1233.
  31. A. Matilainen, N. Vieno, T. Tuhkanen, Efficiency of the activated carbon filtration in the natural organic matter removal, Environ. Int., 32 (2006) 324–331.
  32. N. Chandrasekhara Rao, S. Venkata Mohan, P. Muralikrishna, P.N. Sarma, Treatment of composite chemical wastewater by aerobic GAC-biofilm sequencing batch reactor (SBGR), J. Hazard. Mater., 124 (2005) 59–67.
  33. M. Wolska, Changes in water biostability levels in water treatment trials, Water Sci. Technol., 71 (2015) 538–544.
  34. R. Treguer, R. Tatin, A. Couvert, D. Wolbert, A. Tazi-Pain, Ozonation effect on natural organic matter adsorption and biodegradation – application to a membrane bioreactor containing activated carbon for drinking water production, Water Res., 44 (2010) 781–788.
  35. A. Chin, P.R. Bérubé, Removal of disinfection by-product precursors with ozone-UV advanced oxidation process, Water Res., 39 (2005) 2136–2144.
  36. X. Yu, Z. Qi, X. Zhang, P. Yu, B. Liu, L. Zhang, L. Fu, Nitrogen loss and oxygen paradox in full-scale biofiltration for drinking water treatment, Water Res., 41 (2007) 1455–1464.
  37. A.A. Yavich, K.H. Lee, K.C. Chen, L. Pape, S.J. Masten, Evaluation of biodegradability of NOM after ozonation, Water Res., 38 (2004) 2839–2846.
  38. F. Hammes, S. Meylan, E. Salhi, O. Köster, T. Egli, U. Von Gunten, Formation of assimilable organic carbon (AOC) and specific natural organic matter (NOM) fractions during ozonation of phytoplankton, Water Res., 41 (2007) 1447–1454.
  39. G. Gottschalk, Bacterial Metabolism, Springer-Verlag, 1986.
  40. W. Cheng, S.A. Dastgheib, T. Karanfil, Adsorption of dissolved natural organic matter by modified activated carbons, Water Res., 39 (2005) 2281–2290.