References

  1. J. Alcamo, T. Henrichs, T. Rösch, World Water in 2025: global modeling and scenario analysis for the World Commission on Water for the 21st Century. Report A0002. Center for Environmental System Research, University of Kassel, Kurt Wolter Strasse 3, 34109, Kassel, Germany, 2000.
  2. M. von Sperling, C.A. de Lemos Chernicharo, Biological Wastewater Treatment in Warm Climate Regions, IWA Publishing, London, UK, 2006.
  3. K.A. Reynolds, Tratamiento de Aguas Residuales en Latinoamérica: Identificación del Problema. Agua Latinoamérica. Available at: http://cidta.usal.es/residuales/libros/documentos_nuevos/DeLaLaveSepOct02.pdf. (Accessed 09 September 2018).
  4. K.V. Rajeshwari, M. Balakrishnan, A. Kansal, K. Lata, V.V.N. Kishore, State-of-the-art of anaerobic digestion technology for industrial wastewater treatment, Renewable. Sustainable. Energy. Rev., 4 (2000) 135–156.
  5. Y. Wei, R.T. Van Houten, A.R. Borger, D.H. Eikelboom, Y. Fan, Minimization of excess sludge production for biological wastewater treatment, Water. Res., 37 (2003) 4453–4467.
  6. M. Karimi, M. Hassanshahian, Isolation and characterization of phenol degrading yeasts from wastewater in the coking plant of Zarand, Kerman, Braz. J. Microbiol., 47 (2016) 18–24.
  7. M. Hassanshahian, N.A. Boroujeni, Enrichment and identification of naphthalene-degrading bacteria from the Persian Gulf, Mar. Pollut. Bull., 107 (2016) 59–65.
  8. Y. Kourkoutas, A. Bekatorou, I.M. Banat, R. Marchant, A.A. Koutinas, Immobilization technologies and support materials suitable in alcohol beverages production: a review, Food. Microbiol., 21 (2004) 377–397.
  9. U. Guzik, K. Hupert-Kocurek, M. Krysiak, D. Wojcieszyńska, Degradation potential of protocatechuate 3,4-dioxygenase from crude extract of Stenotrophomonas maltophilia strain KB2 immobilized in calcium alginate hydrogels and on glyoxyl agarose, Biomed. Res. Int., 2014 (2014) 1–8. Available at: http://dx.doi.org/10.1155/2014/138768
  10. D. Wojcieszyńska, K. Hupert-Kocurek, A. Jankowska, U. Guzik, Properties of catechol 2,3-dioxygenase from crude extract of Stenotrophomonas maltophilia strain KB2 immobilized in calcium alginate hydrogels, Biochem. Eng. J., 66 (2012) 1–7.
  11. A. Dzionek, D. Wojcieszyńska, U. Guzik, Natural carriers in bioremediation: a review, Electron. J. Biotechnol., 23 (2016) 28–36.
  12. I.D. Antonio-Carmona, S.Y. Martínez-Amador, H. Martínez-Gutiérrez, V.M. Ovando-Medina, O. González-Ortega, Semiconducting polyurethane/polypyrrole/polyaniline for microorganism immobilization and wastewater treatment in anaerobic/aerobic sequential packed bed reactors, J. Appl. Polym. Sci., 132 (2015) 1–10.
  13. P. Pérez-Rodríguez, V.M. Ovando-Medina, S.Y. Martínez- Amador, J.A. Rodríguez-de la Garza, Bioanode of polyurethane/graphite/polypyrrole composite in microbial fuel cells, Biotechnol. Bioprocess. Eng., 21 (2016) 305–313.
  14. Z. Bayat, M. Hassanshahian, S. Cappello, Immobilization of microbes for bioremediation of crude oil polluted environments: a mini review, Open. Microbiol. J., 9 (2015) 48–54.
  15. J. Lu, P.H. Toy, Organic polymer supports for synthesis and for reagent and catalyst immobilization, Chem. Rev., 109 (2009) 815–38.
  16. T. Takei, K. Ikeda, H. Ijima, K. Kawakami, Fabrication of poly(vinyl alcohol) hydrogel beads crosslinked using sodium sulfate for microorganism immobilization, Process. Biochem., 46 (2011) 566–571.
  17. M. Sousa, J. Azeredo, J. Feijó, R. Oliveira, Polymeric supports for the adhesión of a consortium of autotrophic nitrifying bacteria, Biotechnol. Tech., 11 (1997) 751–754.
  18. S.S. Naik, Y.P. Setty, Optimization of parameters using response surface methodology and genetic algorithm for biological denitrification of wastewater, Int. J. Environ. Sci. Technol., 11 (2014) 823–830.
  19. H. Ullah, A.A. Shah, F. Hasan, A. Hameed, Biodegradation of trinitrotoluene by immobilized Bacillus SP. YRE1, Pak. J. Bot., 42 (2010) 3357–3367.
  20. Z. He, L. Zhou, G. Li, X. Zeng, T. An, G. Sheng, J. Fu, Z. Bai, Comparative study of the eliminating of waste gas containing toluene in twin biotrickling filters packed with molecular sieve and polyurethane foam, J. Hazard. Mater., 167 (2009) 275–281.
  21. G. Robila, M. Ivanoiu, T. Buruiana, E.C. Buruiana, Sulfonated polyurethane anionomer‐polypyrrole molecular composite, J. Appl. Polym. Sci., 66 (1997) 591–595.
  22. N.K. Patil, Y. Veeranagouda, M.H. Vijaykumar, S.A. Nayak, T.B. Karegoudar, Enhanced and potential degradation of o-phthalate by Bacillus sp. immobilized cells in alginate and polyurethane, Int. Biodeterior. Biodegrad., 57 (2006) 82–87.
  23. H.J. Choi, Y.M. Song, I. Chung, K.S. Ryu. N.J. Jo, Conducting polymer actuator based on chemically deposited polypyrrole and polyurethane-based solid polymer electrolyte working in air, Smart. Mater. Struct., 18 (2009) 1–6.
  24. C.R. Broda, J.Y. Lee, S. Sirivisoot, C.E. Schmidt, B.S. Harrison, A chemically polymerized electrically conducting composite of polypyrrole nanoparticles and polyurethane for tissue engineering, J. Biomed. Mater. Res. A., 98 (2011) 509–516.
  25. H.T. Chiu, J.S. Lin, C.M. Huang, The morphology and conductivity of polypyrrole/polyurethane alloy films, J. Appl. Electrochem., 22 (1992) 358–363.
  26. C.V. Bouanga, K. Fatyeyeva, P.Y. Baillif, C. Khaokong, J.F. Pilard, M. Tabellout, Dielectric relaxation phenomena and electric properties of conductive composite polyurethane/polyaniline film, Macromol. Symp., 290 (2010) 175–184.
  27. N.A. Rangel-Vázquez, R. Salgado-Delgado, E. García- Hernández, A.M. Mendoza-Martínez, Characterization of copolymer based in polyurethane and polyaniline (PU/PANI), J. Mex. Chem. Soc., 53 (2009) 248–252.
  28. J. Friedrich, Mechanisms of plasma polymerization – reviewed from a chemical point of view, Plasma. Process. Polym., 8 (2011) 783–802.
  29. T. Kojima, H. Takaku, Y. Urata, K. Gotoh, Pyrolysis GC/MS studies on plasma-polymerized pyrrole, J. Appl. Polym. Sci., 48 (1993) 1395–1398.
  30. Y. Iriyama. M. Hanawa, Plasma polymerization of pyrrole and structures and properties of the polymerized films, Polym. J., 33 (2001) 419–423.
  31. A. Solís-Gómez, M.G. Neira-Velázquez, J. Morales, M.A. Sánchez-Castillo, E. Pérez, Improving stability of TiO2 particles in water by RF-plasma polymerization of poly(acrylic acid) on the particle surface, Colloids. Surf., A., 451 (2014) 66–74.
  32. NMX-AA-030-SCFI-2001. Análisis de Agua – Determinación de la Demanda Química de Oxígeno en Aguas Naturales, Residuales y Residuales Tratadas – Método de Prueba (cancela a la NMX-AA-030-1981). Secretaría de Comercio y Fomento Industrial. Diario Oficial de la Federación. Diario Oficial de la Federación. Available at: http://www.conagua.gob.mx/CONAGUA07/Noticias/NMX-AA-030-SCFI-2001.pdf. (Accessed 17 August 2018).
  33. B. Hynek, O. Yoshihito, Plasma Polymerization Processes, Elsevier, Amsterdam, 1992.
  34. J. Morales, M.G. Olayo, G.J. Cruz, R. Olayo, Plasma polymerization of random polyaniline–polypyrrole–iodine copolymers, J. Appl. Polym. Sci., 85 (2002) 263–270.
  35. B. Paosawatyanyong, K. Tapaneeyakorn, W. Bhanthumnavin, AC plasma polymerization of pyrrole, Surf. Coat. Tech., 204 (2010) 3069–3072.
  36. L. Zhou, G. Li, T. An, Y. Li, Synthesis and characterization of novel magnetic Fe3O4/polyurethane foam composite applied to the carrier of immobilized microorganisms for wastewater treatment, Res. Chem. Intermed., 36 (2010) 277–288.
  37. M. Zhang, J.H. Tay, Y. Qian, X.S. Gu, Coke plant wastewater treatment by fixed biofilm system for COD and NH3-N removal, Water. Res., 32 (1998) 519–527.
  38. MH. Muhamad, S.R.S. Abdullah, A.B. Mohamad, R.A. Rahman, A.A.H. Kadhum, Application of response surface methodology (RSM) for optimisation of COD, NH3–N and 2,4-DCP removal from recycled paper wastewater in a pilot-scale granular activated carbon sequencing batch biofilm reactor (GAC-SBBR), J. Environ. Manage., 121 (2013) 179–190.
  39. Y. Shen, J. Gao, L. Li, Municipal wastewater treatment via co-immobilized microalgal-bacterial symbiosis: microorganism growth and nutrients removal, Bioresour. Technol., 243 (2017) 905–913.
  40. D. Georgiou, J. Hatiras, A. Aivasidis, Microbial immobilization in a two-stage fixed-bed-reactor pilot plant for on-site anaerobic decolorization of textile wastewater, Enzyme. Microb. Technol., 37 (2005) 597–605.