References

  1. M. Hoch, Organotin compounds in the environment - an overview, Appl. Geochem., 16 (2001) 719–743.
  2. FENT, Organotin compounds in municipal wastewater and sewage sludge: contamination, fate in treatment process and ecotoxicological consequences, Sci. Total Environ., 185 (1996) 151–159.
  3. P.L. Podratz, E. Merlo, G.C. Sena, M. Morozesk, M.M. Bonomo, S.T. Matsumoto, M.B. Da Costa, G.C. Zamprogno, P.A.A. Brandão, M.T.W.D. Carneiro, Accumulation of organotins in seafood leads to reproductive tract abnormalities in female rats, Reprod. Toxicol., 57 (2015) 29–42.
  4. A. Pagliarani, S. Nesci, V. Ventrella, Toxicity of organotin compounds: shared and unshared biochemical targets and mechanisms in animal cells, Toxicol. Vitr. An Int. J. Publ. Assoc. with Bibra., 27 (2013) 978–990.
  5. G.Z. Kyzas, P.I. Siafaka, E.G. Pavlidou, K.J. Chrissafis, D.N. Bikiaris, Synthesis and adsorption application of succinyl-grafted chitosan for the simultaneous removal of zinc and cationic dye from binary hazardous mixtures, Chem. Eng. J., 259 (2015) 438–448.
  6. T.J. Afolabi, A.O. Alade, M.O. Jimoh, I.O. Fashola, Heavy metal ions adsorption from dairy industrial wastewater using activated carbon from milk bush kernel shell, Desal. Water Treat., 57(31) (2016) 14565–14577.
  7. A. Imyim, C. Thanacharuphamorn, A. Saithongdee, F. Unob, V. Ruangpornvisuti, Simultaneous removal of Ag(I), Cd(II), Cr(III), Ni(II), Pb(II), and Zn(II) from wastewater using humic acid-coated aminopropyl silica gel, Desal. Water Treat., 57(37) (2016) 17411–17420.
  8. A. Mittal, R. Ahmad, I. Hasan, Iron oxide-impregnated dextrin nanocomposite: synthesis and its application for the biosorption of Cr(VI) ions from aqueous solution, Desal. Water Treat., 57(32) (2016) 15133–15145.
  9. M.G. Kiran, K. Pakshirajan, G. Das, A new application of anaerobic rotating biological contactor reactor for heavy metal removal under sulfate reducing condition, Chem. Eng. J., 321 (2017) 67–75.
  10. H.Y. Yen, P.L. Chen, Adsorption of Cd(II) from wastewater using spent coffee grounds by Taguchi optimization, Desal. Water Treat., 57(24) (2016) 11154–11161.
  11. M.K. Uddin, A review on the adsorption of heavy metals by clay minerals, with special focus on the past decade, Chem. Eng. J., 308 (2017) 438–462.
  12. L. Dambies, A. Jaworska, G. Zakrzewskatrznadel, B. Sartowska, Comparison of acidic polymers for the removal of cobalt from water solutions by polymer assisted ultrafiltration, J. Hazard. Mater., 178 (2010) 988–993.
  13. J.X. Zeng, H.Q. Ye, Z.Y. Hu, Application of the hybrid complexation-ultrafiltration process for metal ion removal from aqueous solutions, J. Hazard. Mater., 161 (2009) 1491–1498.
  14. Y. Huang, J.R. Du, Y. Zhang, D. Lawless, X. Feng, Removal of mercury (II) from wastewater by polyvinylamine-enhanced ultrafiltration, Sep. Purif. Technol., 154 (2015) 1–10.
  15. Y. Huang, D. Wu, X. Wang, W. Huang, D. Lawless, X. Feng, Removal of heavy metals from water using polyvinylamine by polymer-enhanced ultrafiltration and flocculation, Sep. Purif. Technol., 158 (2016) 124–136.
  16. G. Borbély, E. Nagy, Removal of zinc and nickel ions by complexation-membrane filtration process from industrial wastewater, Desalination, 240 (2009) 218–226.
  17. H. Ouni, The effect of surfactant on dye removal by polyelectrolyte enhanced ultrafiltration, Desal. Water Treat., 56(6) (2015) 1526–1535.
  18. D.J. Ennigrou, M.B.S. Ali, M. Dhahbi, M. Ferid, Removal of heavy metals from aqueous solution by polyacrylic acid enhanced ultrafiltration, Desal. Water Treat., 56(10) (2015) 2682–2688.
  19. C.W. Li, C.H. Cheng, K.H. Choo, W.S. Yen, Polyelectrolyte enhanced ultrafiltration (PEUF) for the removal of Cd(II): Effects of organic ligands and solution pH, Chemosphere, 72 (2008) 630–635.
  20. Y. Zhang, Z. Xu, Study on the treatment of industrial wastewater containing Pb2+ ion using a coupling process of polymer complexation-ultrafiltration, Sep. Purif. Technol., 38 (2003) 1585–1596.
  21. J.J. Porter, Recovery of polyvinyl alcohol and hot water from the textile wastewater using thermally stable membranes, J. Membr. Sci., 151 (1998) 45–53.
  22. H. Zhao, S. Zhang, Removal of 2,4,6-trinitrotoluene from wastewater using a novel adsorbent polyvinyl alcohol/SiO2, Desal. Water Treat., 52 (2014) 5983–5989.
  23. Y.R. Qiu, L.J. Mao, W.H. Wang, Removal of manganese from wastewater by complexation–ultrafiltration using copolymer of maleic acid and acrylic acid, Trans. Nonferrous Met. Soc., 24 (2014) 1196–1201.
  24. Y.R. Qiu, L.J. Mao, Removal of heavy metal ions from aqueous solution by ultrafiltration assisted with copolymer of maleic acid and acrylic acid, Desalination, 329 (2013) 78–85.
  25. J.W. Nicholson, Metal salts interaction with acrylic acid–maleic acid copolymer: An infrared spectroscopic study, J. Appl. Polym. Sci., 78 (2015) 1680–1684.
  26. L.P. Buckley, S. Vijayan, G.J. McConeghy, S.R. Maves, J.F. Martin, Removal of soluble toxic metals from water, At. Energy Canada Limited, AECL., 90 (1990) 1544–1590.
  27. S.Y. Tang, Y.R. Qiu, Removal of copper(II) ions from aqueous solutions by complexation–ultrafiltration using rotating disk membrane and the shear stability of PAA-Cu complex, Chem. Eng. Res. Des., 136 (2018) 712–720.
  28. S. Tang, Y. Qiu, Removal of Zn (II) by complexation-ultrafiltration using rotating disk membrane and the shear stability of PAA-Zn complex, Korean J. Chem. Eng., 35 (2018) 2078–2085.
  29. J. Gao, Y. Qiu, B. Hou, Q. Zhang, X. Zhang, Treatment of wastewater containing nickel by complexation-ultrafiltration using sodium polyacrylate and the stability of PAA-Ni complex in the shear field, Chem. Eng. J., 334 (2018) 1878–1885.
  30. Z.J. Xian, Y.H. Qi, H. Nian Dong, L. Jun Feng, Z.L. Feng, Selective separation of Hg(II) and Cd(II) from aqueous solutions by complexation-ultrafiltration process, Chemosphere, 76 (2009) 706–710.
  31. R. Molinari, P. Argurio, T. Poerio, G. Gullone, Selective separation of copper(II) and nickel(II) from aqueous systems by polymer assisted ultrafiltration, Desalination, 200 (2006) 728–730.
  32. R. Molinari, P. Argurio, Arsenic removal from water by coupling photocatalysis and complexation-ultrafiltration processes: A preliminary study, Water Res., 109 (2017) 327–336.
  33. H. Ishii, M. Yamaguchi, T. Odashima, Studies on complexation equilibria between water-soluble hydrazones which consist of 5-nitro-2-pyridylhydrazine and heterocyclic ketones and divalent metal ions, Talanta., 39 (1992) 1181–1188.
  34. P. Cañizares, A. Pérez, R. Camarillo, R. Mazarro, Simultaneous recovery of cadmium and lead from aqueous effluents by a semi-continuous laboratory-scale polymer enhanced ultrafiltration process, J. Membr. Sci., 320 (2008) 520–527.
  35. X.L. Shi, F.M. Xu, Z.J. Zhang, Y.L. Dong, Y. Tan, L. Wang, J.M. Yang, Mechanical properties of hot-pressed Al2O3/SiC composites, Mat. Sci. Eng., 527 (2010) 4646–4649.
  36. J. Huang, F. Yuan, G. Zeng, X. Li, Y. Gu, L. Shi, W. Liu, Y. Shi, Influence of pH on heavy metal speciation and removal from wastewater using micellar-enhanced ultrafiltration, Chemosphere, 173 (2017) 199–206.
  37. J. Luo, Z. Zhu, L. Ding, O. Bals, Y. Wan, M.Y. Jaffrin, E. Vorobiev, Flux behavior in clarification of chicory juice by highshear membrane filtration: Evidence for threshold flux, J. Membr. Sci., 435 (2013) 120–129.
  38. W. Zhang, L. Ding, N. Grimi, M.Y. Jaffrin, T. Bing, Application of UF-RDM (Ultafiltration Rotating Disk Membrane) module for separation and concentration of leaf protein from alfalfa juice: Optimization of operation conditions, Sep. Purif. Technol., 175 (2017) 365–375.
  39. R. Bouzerar, L. Ding, M.Y. Jaffrin, Local permeate flux-shear pressure relationships in a rotating disk microfiltration module: implications for global performance, J. Membr. Sci., 170 (2000) 127–141.