References

  1. B. Marrot, A. Barrios-Martinez, P. Moulin, N. Roche, Biodegradation of high phenol concentration by activated sludge in an immersed membrane bioreactor, Biochem. Eng. J., 30 (2006) 174–183.
  2. M.F. Abid, O.N. Abdulla, A.F. Kadhim, Study on removal of phenol from synthetic wastewater using solar photo catalytic reactor, J. King Saud Univ. – Eng. Sci., 31 (2019) 131–139.
  3. M.R. Samarghandi, A. Ansari, A. Dargahi, A. Shabanloo, D. Nematollahi, M. Khazaei, H.Z. Nasab, Y. Vaziri, Enhanced electrocatalytic degradation of bisphenol A by graphite/β-PbO2 anode in a three-dimensional electrochemical reactor, J. Environ. Chem. Eng., 9 (2021) 106072.
  4. L.G.C. Villegas, N. Mashhadi, M. Chen, D. Mukherjee, K.E. Taylor, N. Biswas, A short review of techniques for phenol removal from wastewater, Curr. Pollut. Rep., 2 (2016) 157–167.
  5. O. Bizerea Spiridon, E. Preda, A. Botez, L. Pitulice, Phenol removal from wastewater by adsorption on zeolitic composite, Environ. Sci. Pollut. Res., 20 (2013) 6367–6381.
  6. J. Liu, J. Xie, Z. Ren, W. Zhang, Solvent extraction of phenol with cumene from wastewater, Desal. Water Treat., 51 (2013) 3826–3831.
  7. T. Gupta, N.C. Pradhan, B. Adhikari, Separation of phenol from aqueous solution by pervaporation using HTPB-based polyurethaneurea membrane, J. Membr. Sci., 217 (2003) 43–53.
  8. A. Mixa, C. Staudt, Membrane-based separation of phenol/water mixtures using ionically and covalently cross-linked ethylene-methacrylic acid copolymers, J. Chem. Eng., (2008) 1–12.
  9. S.F. Shen, K.H. Smith, S. Cook, S.E. Kentish, J.M. Perera, T. Bowser, G.W. Stevens, Phenol recovery with tributyl phosphate in a hollow fiber membrane contactor: experimental and model analysis, Sep. Purif. Technol., 69 (2009) 48–56.
  10. A. Nanoti, S.K. Ganguly, A.N. Goswami, B.S. Rawat, Removal of phenols from wastewater using liquid membranes in a microporous hollow-fiber-membrane extractor, Ind. Eng. Chem. Res., 36 (1997) 4369–4373.
  11. R. Shokoohi, A.J. Jafari, A. Dargahi, Z. Torkshavand, Study of the efficiency of bio-filter and activated sludge (BF/AS) combined process in phenol removal from aqueous solution: determination of removing model according to response surface methodology (RSM), Desal. Water Treat., 77 (2017) 256–263.
  12. R. Shokoohi, H. Movahedian, A. Dargahi, A.J. Jafari, A. Parvaresh, Survey on efficiency of BF/AS integrated biological system in phenol removal of wastewater, Desal. Water Treat., 82 (2017) 315–321.
  13. A. Dargahi, K. Hasani, S.A. Mokhtari, M. Vosoughi, M. Moradi, Y. Vaziri, Highly effective degradation of
    2,4-dichlorophenoxyacetic acid herbicide in a three-dimensional sono-electro-Fenton (3D/SEF) system using powder activated carbon (PAC)/Fe3O4 as magnetic particle electrode, J. Environ. Chem. Eng., 9 (2021) 105889.
  14. A. Dargahi, M. Mohammadi, F. Amirian, A. Karami, A. Almasi, Phenol removal from oil refinery wastewater using anaerobic stabilization pond modeling and process optimization using response surface methodology (RSM), Desal. Water Treat., 87 (2017) 199–208.
  15. S. Gupta, N.S. Rathore, J.V. Sonawane, A.K. Pabby, R.R. Singh, A.K. Venugopalan, P.K. Dey, B. Venkatramani, Hollow fiber membrane contactor: novel extraction device for plutonium extraction, BARC Newsletter, (2003) 181–189.
  16. A. Almasi, A. Dargahi, A. Amrane, M. Fazlzadeh, M. Soltanian, A. Hashemian, Effect of molasses addition as biodegradable material on phenol removal under anaerobic conditions, Environ. Eng. Manage. J., 17 (2018) 1475–1482.
  17. Z. Honarmandrad, N. Javid, M. Malakootian, Removal efficiency of phenol by ozonation process with calcium peroxide from aqueous solutions, Appl. Water Sci., 11 (2021) 1–9.
  18. A. Dargahi, A. Ansari, D. Nematollahi, G. Asgari, R. Shokoohi, M.R. Samarghandi, Parameter optimization and degradation mechanism for electrocatalytic degradation of 2,4-diclorophenoxyacetic acid (2,4-D) herbicide by lead dioxide electrodes, RSC Adv., 9 (2019) 5064–5075.
  19. W.H. Saputera, A.S. Putrie, A.A. Esmailpour, D. Sasongko, V. Suendo, R.R. Mukti, Technology advances in phenol removals: current progress and future perspectives, Catalysts, 11 (2021) 998, doi: 10.3390/catal11080998.
  20. D.T. Huong, N. Van Tu, D.T.T. Anh, N.A. Tien, T.T.K. Ngan, L. Van Tan, Removal of phenol from aqueous solution using internal microelectrolysis with Fe-Cu: optimization and application on real coking wastewater, Processes, 9 (2021) 720, doi: 10.3390/pr9040720.
  21. M. Abdelkreem, Adsorption of phenol from industrial wastewater using olive mill waste, APCBEE Procedia, 5 (2013) 349–357.
  22. S. Wang, D. Shi, R. Yang, Y. Xu, H. Guo, X. Yang, Solvent extraction of phenol from aqueous solution with benzyl 2-ethylhexyl sulfoxide as a novel extractant, Can. J. Chem. Eng., 93 (2015) 1787–1792.
  23. A. Bódalo, E. Gómez, A.M. Hidalgo, M. Gómez, M.D. Murcia, I. López, Nanofiltration membranes to reduce phenol concentration in wastewater, Desalination, 245 (2009) 680–686.
  24. X. Sun, C. Wang, Y. Li, W. Wang, J. Wei, Treatment of phenolic wastewater by combined UF and NF/RO processes, Desalination, 355 (2015) 68–74.
  25. F. Khazaali, A. Kargari, Treatment of phenolic wastewaters by a domestic low-pressure reverse osmosis system, J. Membr. Sci. Res., 3 (2017) 22–28.
  26. M. Aslam, A. Charfi, G. Lesage, M. Heran, J. Kim, Membrane bioreactors for wastewater treatment: a review of mechanical cleaning by scouring agents to control membrane fouling, Chem. Eng. J., 307 (2017) 897–913.
  27. H. Fashandi, A. Ghodsi, R. Saghafi, M. Zarrebini, CO2 absorption using gas–liquid membrane contactors made of highly porous poly(vinyl chloride) hollow fiber membranes, J. Greenhouse Gas Control, 52 (2016) 13–23.
  28. K. Sakai, Dialysis Membranes for Blood Purification, Frontiers of Medical and Biological Engineering, The International J. of the Japan Society of Medical Electronics and Biological Eng., 10 (2000) 117–129.
  29. P. Biełuszka, G. Zakrzewska, E. Chajduk, J. Dudek, Liquid–liquid extraction of uranium(VI) in the system with a membrane contactor, J. Radioanal. Nucl. Chem., 299 (2014) 611–619.
  30. A. Gabelman, S.T. Hwang, Hollow fiber membrane contactors, J. Membr. Sci., 159 (1999) 61–106.
  31. Y. Park, A.H.P. Skelland, L.J. Forney, J.H. Kim, Removal of phenol and substituted phenols by newly developed emulsion liquid membrane process, Water Res., 40 (2006) 1763–1772.
  32. F.F. Zha, A.G. Fane, C.J.D. Fell, Phenol removal by supported liquid membranes, Sep. Purif. Technol., 29 (1994) 2317–2343.
  33. Z. Lazarova, S. Boyadzhieva, Treatment of phenol-containing aqueous solutions by membrane-based solvent extraction in coupled ultrafiltration modules, Chem. Eng. J., 100 (2004) 129–138.
  34. S. Chaouchi, O. Hamdaoui, Extraction of endocrine disrupting compound propylparaben from water by emulsion liquid membrane using trioctylphosphine oxide as carrier, J. Ind. Eng. Chem., 22 (2015) 296–305.
  35. M. Amini, A. Rahbar-Kelishami, M. Alipour, O. Vahidi, Supported liquid membrane in metal ion separation: an overview, J. Membr. Sci. Res., 4 (2018) 121–135.
  36. H. Sun, J. Yao, D. Li, Q. Li, B. Liu, S. Liu, H. Cong, S. Van Agtmaal, C. Feng, Removal of phenols from coal gasification wastewater through polypropylene hollow fiber supported liquid membrane, Chem. Eng. Res. Des., 123 (2017) 277–283.
  37. D.W. Choi, Y.H. Kim, Cadmium removal using hollow fiber membrane with organic extradant, Korean J. Chem. Eng., 20 (2003) 768–771.
  38. M.J. González-Muñoz, S. Luque, J.R. Álvarez, J. Coca, Recovery of phenol from aqueous solutions using hollow fibre contactors, J. Membr. Sci., 213 (2003) 181–193.
  39. C.R. Girish, V.R. Murty, Adsorption of phenol from aqueous solution using Lantana Camara, forest waste: packed bed studies and prediction of breakthrough curves, Environ. Process., 2 (2015) 773–796.
  40. A. Hussain, S.K. Dubey, V. Kumar, Kinetic study for aerobic treatment of phenolic wastewater, Water Resour. Ind., 11 (2015) 81–90.
  41. W.W. Anku, M.A. Mamo, P.P. Govender, Phenolic compounds in water: sources, reactivity, toxicity and treatment methods, phenolic compounds – natural sources, Importance Applications, (2017) 419–443.
  42. E. Poonguzhali, A. Kapoor, P.S. Kumar, S. Prabhakar, Effective separation of toxic phenol from aquatic system using membrane assisted solvent extraction system, Desal. Water Treat., 221 (2021) 316–327.
  43. M.A. Kamaruddin, N. Ismail, U.N. Osman, R. Alrozi, Sustainable separation of Cu(II) and Cd(II) from aqueous solution by using solvent extraction technique with di-2-ethylhexylphosphoric acid (D2EHPA) as carrier: optimization study, Appl. Water Sci., 9 (2019) 1–12.
  44. P. Komponen, C. Membran, A. Sisa, Liquid membrane component selection for removal of phenol from simulated aqueous waste solution, Malaysian J. Anal. Sci., 22 (2018) 702–714.
  45. Y.S. Ng, N.S. Jayakumar, M.A. Hashim, Behavior of hydrophobic ionic liquids as liquid membranes on phenol removal: experimental study and optimization, Desalination, 278 (2011) 250–258.
  46. A. Kapoor, E. Poonguzhali, N. Dayanandan, S. Prabhakar, Applications of membrane contactors for water treatment, Appl. Water Sci., 1 (2021) 361–381.
  47. S. Shen, S.E. Kentish, G.W. Stevens, Shell-side mass-transfer performance in hollow-fiber membrane contactors, Solvent Extr. Ion Exch., 28 (2010) 817–844.
  48. X. Yang, A. Zou, J. Qiu, S. Wang, H. Guo, Phenol removal from aqueous system by bis(2-ethylhexyl) sulfoxide extraction, Sep. Sci. Technol. (Philadelphia), 49 (2014) 2495–2501.
  49. C. Yang, Y. Qian, L. Zhang, J. Feng, Solvent extraction process development and on-site trial-plant for phenol removal from industrial coal-gasification wastewater, Chem. Eng. J., 117 (2006) 179–185.
  50. J. Shao, Y. Cheng, C. Yang, G. Zeng, W. Liu, P. Jiao, H. He, Efficient removal of naphthalene-2-ol from aqueous solutions by solvent extraction, J. Environ. Sci. (China), 47 (2016) 120–129.
  51. E.M. Abu Elgoud, Z.H. Ismail, Y.A. El-Nadi, H.F. Aly, Separation of cerium(IV) and yttrium(III) from citrate medium by solvent extraction using D2EHPA in kerosene, Chem. Pap., 74 (2020) 2461–2469.
  52. E.H. Binns, The dissociation constant of phenol in water between 25°C and 60°C, Trans. Faraday Soc., 55 (1959) 1900–1903.
  53. W. Cichy, J. Szymanowski, Recovery of phenol from aqueous streams in hollow fiber modules, Environ. Sci. Technol., 36 (2002) 2088–2093.