References

  1. S. Rengaraj, S.H. Moon, R. Sivabalan, B. Arabindoo, V. Muru-gesan, Removal of phenol from aqueous solution and resin manufacturing industry wastewater using an agricultural waste: rubber seed coat, J. Hazard. Mater., 89 (2002) 185–196.
  2. L. Jakobek, Interactions of polyphenols with carbohydrates, lipids and proteins, Food Chem., 175 (2015) 556–567.
  3. M. Samimi, M. Shahriari Moghadam, Phenol biodegradation by bacterial strain O-CH1 isolated from seashore, Global J. Environ. Sci. Manage., 6 (2020) 109–118.
  4. M. Shahriari Moghadam, N. Safaei, G.H.E. brahimipour, Optimization of phenol biodegradation by efficient bacteria isolated from petrochemical effluents, Global J. Environ. Sci. Manage., 2 (2016) 249–256.
  5. L. Zhou, J. Hu, H. Zhong, X. Li, Study of phenol removal using fluidized-bed Fenton process, Chem. Eng. Res. Des., 90 (2012) 377–382.
  6. O. Sacco, V. Vaiano, Ch. Daniel, W. Navarra, V. Venditto, Removal of phenol in aqueous media by N-doped TiO2 based photocatalytic aerogels, Mater. Sci. Semicond. Process., 80 (2018) 104–110.
  7. 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.
  8. B. Chokri, Kh. Moncef, M. Salma, K. Monem, E. Boubaker, F. Jean Francois, Electrochemical treatment of olive mill wastewater: treatment extent and effluent phenolic compounds monitoring using some uncommon analytical tools, J. Environ. Sci., 25 (2013) 220–230.
  9. E. Ouabou, A. Anouar, S. Hilali, Traitement de la margine brute d’huiled’olive par distillation suivi de neutralisation par chaux, J. Appl. Biosci., 79 (2014) 6867–6872.
  10. G. Sbai, M. Loukili, Traitement des margines par un procèdecouplant la coagulation floculation et la voie électrochimique, Eur. Sci. J., 11 (2015) 1857–7881.
  11. O. Chedeville, M. Debacq, C. Porte, Removal of phenolic compounds present in olive mill wastewaters by ozonation, Desalination, 24 (2009) 865–869.
  12. M. Achak, N. Ouazzani, L. Mandi, Treatment of modern olive mill effluent by infiltration-percolation on a sand filter, Rev. Des Sci. De L’Eau, 22 (2009) 421–433.
  13. W. Raza, J. Lee, N. Raza, Y. Luo, K.-H. Kim, J. Yang, Removal of phenolic compounds from industrial waste water based on membrane-based technologies, J. Ind. Eng. Chem., 71 (2019) 1–18.
  14. M.D. Víctor-Ortega, J.M. Ochando-Pulido, A. Martínez-Ferez, Phenols removal from industrial effluents through novel polymeric resins: kinetics and equilibrium studies, Sep. Purif. Technol., 160 (2016) 136–144.
  15. C. Datta, A. Dutta, D. Dutta, S. Chaudhuri, Adsorption of polyphenols from ginger rhizomes on an anion exchange resin Amberlite IR-400–Study on effect of pH and temperature, Procedia Food Sci., 1 (2011) 893–899.
  16. Ö. Aktaş, F. Çeçen, Adsorption, desorption and bioregeneration in the treatment of 2-chlorophenol with activated carbon, J. Hazard. Mater., 141(2007) 769–777.
  17. S.J. Kulkarni, R.W. Tapre, S.V. Patil, M.B. Sawarkar, Adsorption of phenol from wastewater in fluidized bed using coconut shell activated carbon, Procedia Eng., 51 (2013) 300–307.
  18. M.A. Dabhade, M.B. Saidutta, D.V.R. Murthy, Adsorption of phenol on granular activated carbon from nutrient medium: equilibrium and kinetic study, Int. J. Environ. Res., 3 (2009) 557–568.
  19. N.T. Abdel-Ghani, G.A. El-Chaghaby, F.S. Helal, Preparation, characterization and phenol adsorption capacity of activated carbons from African beech wood sawdust, Global J. Environ. Sci. Manage., 2 (2016) 209–222.
  20. S. Zeboudj, M. Loucif Seiad, A. Namane, D. Hank, A. Hellal, Elimination du phenol: couplage de l’adsorption sur charbon actif et la biodegradation par Pseudomonas aeruginosa, Rev. Microbiol. Ind. San et Environn., 8 (2014) 1–15.
  21. B. Ozkaya, Adsorption and desorption of phenol on activated carbon and comparison of isotherm models, J. Hazard. Mater., 129 (2006) 158–163.
  22. F. Belaib, A.H. Meniai, M.B. Lehocine, Elimination of phenol by adsorption onto mineral/polyaniline composite solid support, Procedia Eng., 18 (2012) 1254–1260.
  23. A. El Gaidoumi, A.Ch. Benabdallah, A. Lahrichi, A. Kherbeche, Adsorption of phenol in aqueous medium by a raw and treated Moroccan pyrophyllite, J. Mater. Environ. Sci., 6 (2015) 2247–2259.
  24. C.R. Girish, V. Ramachandra Murty, Adsorption of phenol from wastewater using locally available adsorbents, J. Environ. Res. Develop., 6 (2012) 763–772.
  25. M. Achak, A. Hafidi, N. Ouazzani, S. Sayadi, L. Mandi, Low cost biosorbent “banana peel” for the removal of phenolic compounds from olive mill wastewater: kinetic and equilibrium studies, J. Hazard. Mater., 166 (2009) 117–125.
  26. S. Elabbas, L. Mandi, F. Berrekhis, M.N. Pons, J.P. Leclerc, N. Ouazzani, Removal of Cr(III) from chrome tanning waste water by adsorption using two natural carbonaceous materials: eggshell and powdered marble, J. Environ. Manage., 166 (2016) 589–595.
  27. B.M. Villar da Gama, G. Elisandra do Nascimento, D.C. Silva Sales, J.M. Rodríguez-Díaz, C.M. Bezerra De Menezes Barbosa, M.M. Menezes Bezerra Duarte, Mono and binary component. adsorption of phenol and cadmium using adsorbent derived from peanut shells, J. Cleaner Prod., 201 (2018) 219–228.
  28. L. Sellaoui, M. Kehili, E.C. Lima, P.S. Thue, A. Bonilla-Petriciolet, A. Ben Lamine, G.L. Dotto, A. Erto, Adsorption of phenol on microwave-assisted activated carbons: modelling and interpretation, J. Mol. Liq., 274 (2019) 309–314.
  29. I. Ali, M. Asim, T.A. Khan, Low cost adsorbents for the removal of organic pollutants from wastewater, J. Environ. Manage., 113 (2012) 170–183.
  30. V.K. Gupta, I. Ali, Chapter 2 – Water Treatment for Inorganic Pollutants by Adsorption Technology, In: Environmental Water, Advances in Treatment, Remediation and Recycling, Elsevier, 2013, pp. 29–91.
  31. S. De Gisi, G. Lofrano, M. Grassi, M. Notarnicola, Characteristics and adsorption capacities of low-cost sorbents for wastewater treatment: a review, SM&T, 9 (2016) 10–40.
  32. M. Moradi, M. Heydari, M. Darvish motevalli, K. Karimyan, V.K. Gupta, Y. Vasseghianc, H. Sharafi, Kinetic and modeling data on phenol removal by Iron-modified Scoria Powder (FSP) from aqueous solutions, Data Brief, 20 (2018) 957–968.
  33. H. Bensalah, M.F. Bekheet, S.A. Younssi, M. Ouammou, A. Gurlo, Hydrothermal synthesis of nanocrystalline hydroxyapatite from phosphogypsum waste, J. Environ. Chem. Eng., 6 (2018) 1347–1352.
  34. S. Saoiabi, A. Gouza, H. Bouyarmane, A. Laghzizil, A. Saoiabi, Organophosphonate-modified hydroxyapatites for Zn(II) and Pb(II) adsorption in relation of their structure and surface properties, J. Environ. Chem. Eng., 4 (2016) 428–433.
  35. H. Bachoua, H. Nasri, M. Debbabi, B. Badraoui, Using tunisian phosphate rock and her converted hydroxyapatite for lead removal from aqueous solution, Int. J. Eng. Res. Appl., 4 (2014) 171–178.
  36. H. Bouyarmane, S. Saoiabi, A. Laghzizil, A. Saoiabi, A. Rami, M. El Karbane, Natural phosphate and its derivative porous hydroxyapatite for the removal of toxic organic chemicals, Desal. Water Treat., 5 (2013) 7265–7269.
  37. A. Bahdod, S. El Asri, A. Saoiabi, T. Coradin, A. Laghzizil, Adsorption of phenol from an aqueous solution by selected apatite adsorbents: kinetic process and impact of the surface properties, Water Res., 43 (2009) 313–318.
  38. A.S. Alzaydien, W. Manasreh, Equilibrium, kinetic and thermodynamic studies on the adsorption of phenol onto activated phosphate rock, Int. J. Phys. Sci., 4 (2009) 172–181.
  39. H. Bouyarmane, S. El Asri, A. Rami, C. Roux, M.A. Mahly, A. Saoiabi, T. Coradin, A. Laghzizil, Pyridine and phenol removal using natural and synthetic apatite as low cost sorbents: influence of porosity and surface interactions, J. Hazard. Mater., 181 (2010) 736–741.
  40. H. Yaacoubi, Z. Songlin, M. Mouflih, M. Gourai, S. Sebti, Adsorption isotherm, kinetic and mechanism studies of 2-nitrophenol on sedimentary phosphate, Mediterr. J. Chem., 4 (2015) 289–296.
  41. W. Tanthapanichakoon, P. Ariyadejwanich, P. Japthong, K. Nakagawa, S.R. Mukai, H. Tamon, Adsorption–desorption characteristics of phenol and reactive dyes from aqueous solution on mesoporous activated carbon prepared from waste tires, Water Res., 39 (2005) 1347–1353.
  42. S. El Asri, A. Laghzizil, A. Saoiabi, A. Alaoui, K. El Abassi, R. M’hamdi, A novel process for the fabrication of nanoporous apatites from Moroccan phosphate rock, Colloids Surf. A, 350 (2009) 73–78.
  43. F. Aziz, M. El Achaby, A. Lissaneddine, Kh. Aziz, N. Ouazzani, R. Mamouni, L. Mandi, Composites with alginate beads: a novel design of nano-adsorbents impregnation for largescale continuous flow wastewater treatment pilots, Saudi J. Biol. Sci., 27 (2020) 2499–2508.
  44. I. Langmuir, J. Amer, The adsorption of gases on planes of glass mica and platinum, J. Am. Chem. Soc., 40 (1918) 1361–1403.
  45. H. Freundlich, Colloid and capillary chemistry, J. Chem. Educ., 3 (1926) 1454.
  46. H. Qiu, L. Lv, B-c. Pan, Q.-J. Zhang, W.-M. Zhang, Q.-x. Zhang, review in adsorption kinetic models, J. Zhejiang Univ. Sci. A, 10 (2009) 716–724.
  47. M. Loredo-Cancino, E. Soto-Regalado, R.B. García-Reyes, F. de j. Cerino-Córdova, M.T. Garza-González, M. M. Alcalá-Rodríguez, N.E. Dávila-Guzmán, Adsorption and desorption of phenol onto barley husk-activated carbon in an airlift reactor, Desal. Water Treat., 1 (2014) 1–16.
  48. D.M. Ruthven, Principles of Adsorption and Adsorption Processes, Wiley and Sons, New York, 1984.
  49. G.C. Fontes, V.M.A. Calado, A.M. Rossi, M.H.M. da Rocha-Leão, Characterization of antibiotic-loaded alginate-Osa starch microbeads produced by ionotropic pregelation, J. Biomed. Biotechnol., (2013) 1–11 (Special Issue).
  50. C.H. Giles, T.H. MacEwan, S.N. Nakhwa, D. Smith, A system of classification of solution adsorption isotherms, and its use in diagnosis of adsorption mechanisms and in measurement of specific surface areas of solids, J. Chem. Soc., 786 (1960) 3973–3993.
  51. A. Oumani, L. Mandi, F. Berrekhis, N. Ouazzani, Removal of Cr3+ from tanning effluents by adsorption onto phosphate mine waste: key parameters and mechanisms, J. Hazard. Mater., 378 (2019) 120718.
  52. R.A. Shawabkeh, E.S.M. Abu-Nameh, Absorption of phenol and methylene blue by activated carbon from pecan shells, Colloid J., 69 (2007) 355–359.
  53. L. Khenniche, F. Benissad-Aissani, Adsorptive removal of phenol by coffee residue activated carbon and commercial activated carbon: equilibrium, kinetics, and thermodynamics, J. Chem. Eng. Data, 55 (2010) 4677–4686.
  54. J.M.R. Rodriguez Arana, R.R. Mazzoco, Adsorption studies of methylene blue and phenol onto black stone cherries prepared by chemical activation, J. Hazard. Mater., 180 (2010) 656–661.
  55. R. Benaddi, Kh. El harfi, F. Aziz, F. Berrekhis, N. Ouazzani, Removal of phenolic compounds from synthetic solution and oil mill waste water by adsorption onto nanoparticles synthesized from phosphate rock, J. Surface Sci. Technol., 36 (2020) 39–51.