References

  1. C. Di Iaconi, M. De Sanctis, S. Rossetti, A. Mancini, Bio-chemical treatment of medium-age sanitary landfill leachates in a high synergy system, Process Biochem., 46 (2011) 2322–2329.
  2. D. Jovanov, B. Vujić, G. Vujić, Optimization of the monitoring of landfill gas and leachate in closed methanogenic landfills, J. Environ. Manag., 216 (2018) 32–40.
  3. G.h. Mostafaii, N. Roozitalab, D. Rabbani, G.h. Moosavi, L. Iranshahi, Application of electrochemical process in removal of heavy metals from landfill leachate, Int. Arch. Health Sci., 1 (2016) 31–35.
  4. T.T. Van Truong, N.B. Ha, P.D. Nguyen, X.T. Bui, B.T. Dang, J. Park, W. Guo, H.H. Ngo, High rate nitrogen removal by ANAMMOX internal circulation reactor (IC) for old landfill leachate treatment, Bioresour. Technol., 234 (2017) 281–288.
  5. R. Poblete, I. Oller, M.I. Maldonado, Y. Luna, E. Cortes, Cost estimation of COD and color removal from landfill leachate using combined coffee-waste based activated carbon with advanced oxidation processes, J. Environ. Chem. Eng., 5 (2017) 114–121.
  6. J. Xu, Y. Long, D. Shen, H. Feng, T. Chen, Optimization of Fenton treatment process for degradation of refractory organics in pre-coagulated leachate membrane concentrates, J. Hazard. Mater., 323 (2017) 674–680.
  7. Q. Xue, J.S. Li, P. Wang, L. Liu, Z.Z. Li, Removal of heavy metals from landfill leachate using municipal solid waste incineration fly ash as adsorbent, Clean-Soil Air Water, 42 (2014) 1626–1631.
  8. A. Dan, M. Oka, Y. Fujii, S. Soda, T. Ishigaki, T. Machimura, M. Ike, Removal of heavy metals from synthetic landfill leachate in lab-scale vertical flow constructed wetlands, Sci. Total Environ., 584 (2017) 742–750.
  9. M. Jaishankar, T. Tseten, N. Anbalagan, B.B. Mathew, K.N. Beeregowda, Toxicity, mechanism and health effects of some heavy metals, Interdiscip. Toxicol., 7 (2014) 60–72.
  10. S. Das, R. Raj, N. Mangwani, H.R. Dash, J, Chakraborty, Heavy metals and hydrocarbons: adverse effects and mechanism of toxicity, Microb. Biodeg. Bioremed., (2014) 23–54.
  11. Y. Wu, S. Zhou, D. Chen, R. Zhao, H. Li, Y. Lin, Transformation of metals speciation in a combined landfill leachate treatment, Sci. Total Environ., 409 (2011) 1613–1620.
  12. M.A. Zazouli, Z. Yousefi, Removal of heavy metals from solid wastes leachates coagulation-flocculation process, J. Appl. Sci., 8 (2008) 2142–2147.
  13. B. Xie, Z. Lv, B.Y. Lv, Y.X. Gu, Treatment of mature landfill leachate by biofilters and Fenton oxidation, Waste Manag., 30 (2010) 2108–2112.
  14. K. Ushikoshi, T. Kobayashi, K. Uematsu, A. Toji, D. Kojima, K. Matsumoto, Leachate treatment by the reverse osmosis system, Desalination, 150 (2002) 121–129.
  15. E. Agrafioti, D. Kalderis, E. Diamadopoulos, Arsenic and chromium removal from water using biochars derived from rice husk, organic solid wastes and sewage sludge, J. Environ. Manag., 133 (2014) 309–314.
  16. S. Renou, J.G. Givaudan, S. Poulain, F. Dirassouyan, P. Moulin, Landfill leachate treatment: review and opportunity, J. Hazard. Mater., 150 (2008) 468–493.
  17. A. Tripathi, M.R. Ranjan, Heavy metal removal from wastewater using low cost adsorbents, J Bioremed. Biodeg., 6 (2015) 1000315.
  18. S. Abdulrazak, K. Hussaini, H.M, Sani, Evaluation of removal efficiency of heavy metals by low-cost activated carbon prepared from African palm fruit, Appl. Water Sci., 7 (2017) 3151–3155.
  19. G. Issabayeva, M.K. Aroua, N.M. Sulaiman, Study on palm shell activated carbon adsorption capacity to remove copper ions from aqueous solutions, Desalination, 262 (2010) 94–98.
  20. I.K. Erabee, A. Ahsan, B. Jose, M.M. Aziz, A.W. Ng, S. Idrus, N.N. Daud, Adsorptive treatment of landfill leachate using activated carbon modified with three different methods, KSCE J. Civ. Eng., 31 (2017) 1–3.
  21. K.Y. Foo, B.H. Hameed, An overview of landfill leachate treatment via activated carbon adsorption process, J. Hazard. Mater., 171 (2009) 54–60.
  22. L. Beesley, E. Moreno-Jiménez, J.L. Gomez-Eyles, E. Harris, B. Robinson,T. Sizmur, A review of biochars’ potential role in the remediation, revegetation and restoration of contaminated soils, Environ. Pollut., 159 (2011) 3269–3282.
  23. B. De Caprariis, P. De Filippis, A.D. Hernandez, E. Petrucci, A. Petrullo, M. Scarsella, M. Turchi, Pyrolysis wastewater treatment by adsorption on biochars produced by poplar biomass, J. Environ. Manag., 197 (2017) 231–238.
  24. S. Wong, N. Ngadi, I.M. Inuwa, O. Hassan, Recent advances in applications of activated carbon from biowaste for wastewater treatment: A short review, J. Clean. Prod., 175 (2018) 361–375.
  25. E. Sočo, J. Kalembkiewicz, Adsorption of nickel (II) and copper (II) ions from aqueous solution by coal fly ash, J. Environ. Chem. Eng., 1 (2013) 581–588.
  26. B. Chen, M. Yuan, Enhanced sorption of polycyclic aromatic hydrocarbons by soil amended with biochar, J. Soil Sedim., 11 (2011) 62–71.
  27. G. Marchal, K.E. Smith, A. Rein, A. Winding, L.E. de Jonge, S. Trapp, U.G. Karlson, Impact of activated carbon, biochar and compost on the desorption and mineralization of phenanthrene in soil, Environ. Pollut., 181 (2013) 200–210.
  28. N.A. Qambrani, M.M. Rahman, S. Won, S. Shim, C. Ra, Biochar properties and eco-friendly applications for climate change mitigation, waste management, and wastewater treatment: A review, Renew. Sustain. Energy Rev., 79 (2017) 255–273.
  29. M. Inyang, B. Gao, Y. Yao, Y. Xue, A.R. Zimmerman, P. Pullammanappallil, X. Cao, Removal of heavy metals from aqueous solution by biochars derived from anaerobically digested biomass, Bioresour. Technol., 110 (2012) 50–56.
  30. G.K. Parshetti, S. Chowdhury, R. Balasubramanian, Hydrothermal conversion of urban food waste to chars for removal of textile dyes from contaminated waters, Bioresour. Technol., 161 (2014) 310–319.
  31. M.A. Abduli, E. Safari, Preliminary analysis of heavy metals in the Kahrizak landfill leachate: A conceptual approach, Int. J. Environ. Stud., 60 (2003) 491–499.
  32. O.O. Oluwapelumi, Geotechnical characterization of some clayey soils for use as landfill liner, J. Appl. Sci. Environ. Manag., 19 (2015) 211–217.
  33. N. Shariatmadari, A.H. Sadeghpour, M. Mokhtari, Aging effect on physical properties of municipal solid waste at the Kahrizak Landfill, Iran, Int. J. Civ. Eng., 13 (2015) 126–136.
  34. M. Pazoki, M.A. Abdoli, A. Karbassi, N. Mehrdadi, K. Yaghmaeian, Attenuation of municipal landfill leachate through land treatment, J. Environ. Health Sci. Eng., 12 (2014) 1–8.
  35. Water Environment Federation, American Public Health Association, Standard methods for the examination of water and wastewater, American Public Health Association (APHA): Washington, DC, USA2005.
  36. USEPA, Method 3005A, Acid Digestion of Waters for Total Recoverable or Dissolved Metals for Analysis by FLAA or ICP Spectroscopy, In: Test Methods for Evaluating Solid Waste: Physical/Chemical Methods, SW-846, 3rd edition, United States Environmental Protection Agency, Washington DC 1992.
  37. H. Modin, K.M. Persson, A. Andersson, M. van Praagh, Removal of metals from landfill leachate by sorption to activated carbon, bone meal and iron fines, J. Hazard. Mater., 189 (2011) 749–754.
  38. X. Li, Q. Shen, D. Zhang, X. Mei, W. Ran, Y. Xu, G. Yu, Functional groups determine biochar properties (pH and EC) as studied by two-dimensional 13C NMR correlation spectroscopy, PLoS One, 8 (2013) e65949.
  39. A. Bogusz, P. Oleszczuk, R. Dobrowolski, Adsorption and desorption of heavy metals by the sewage sludge and biochar-amended soil, Environ. Geochem. Health, (2017) 1–12.
  40. A. Shehzad, M.J. Bashir, S. Sethupathi, J.W. Lim, An insight into the remediation of highly contaminated landfill leachate using sea mango based activated bio-char: optimization, isothermal and kinetic studies, Desal. Water Treat., 57 (2016) 22244–22257.
  41. M.J. Ghazizadeh, M.A. Abduli, E. Safari, Study the changes in the clay liner permeability under the effect of urban waste leachate (Case study: Kahrizak landfill site), J. Environ. Stud., 54 (2010) 35–42.
  42. A. Shokooh, E. Safari, S.H. Hashemi, Evaluation of leachate quality from municipal waste disposal site and composting facilities (Case study: Mashhad City), J. Environ. Sci. Technol., 15 (2014) 97–105.
  43. S. Wang, B. Gao, A.R. Zimmerman, Y. Li, L. Ma, W.G. Harris, K.W. Migliaccio, Physicochemical and sorptive properties of biochars derived from woody and herbaceous biomass, Chemosphere, 134 (2015) 257–262.
  44. Y. Okimori, M. Ogawa, F. Takahashi, Potential of CO2 emission reductions by carbonizing biomass waste from industrial tree plantation in South Sumatra, Indonesia, Mitig. Adapt. Strateg. Glob. Change, 8 (2003) 261–280.
  45. F. Fu, Q. Wang, Removal of heavy metal ions from wastewaters: a review, J. Environ. Manag, 92 (2011) 407–418.
  46. KV. Kumar, Linear and non-linear regression analysis for the sorption kinetics of methylene blue onto activated carbon, J. Hazard. Mater., 137 (2006) 1538–1544.
  47. K.A. Krishnan, K.G. Sreejalekshmi, R.S. Baiju, Nickel (II) adsorption onto biomass based activated carbon obtained from sugarcane bagasse pith, Bioresour. Technol., 102 (2011) 10239–10247.
  48. O. Hamdaoui, E. Naffrechoux, Modeling of adsorption isotherms of phenol and chlorophenols onto granular activated carbon: Part II. Models with more than two parameters, J. Hazard. Mater., 147 (2007) 401–411.
  49. M.A. Salam, Removal of heavy metal ions from aqueous solutions with multi-walled carbon nanotubes: kinetic and thermodynamic studies, Int. J. Environ. Sci. Technol., 10 (2013) 677–688.
  50. M. Tagavifar, S.H. Jang, H. Sharma, D. Wang, L.Y. Chang, K. Mohanty, G.A. Pope, Effect of pH on adsorption of anionic surfactants on limestone: Experimental study and surface complexation modeling, Colloid Surf. Physicochem. Eng. Asp., 538 (2018) 549–558.
  51. A.U. Itodo, H.U. Itodo, Sorption energies estimation using Dubinin-Radushkevich and Temkin adsorption isotherms, Life Sci. J., 7 (201) 31–39.
  52. J.R. Zimmerman, D. Werner, U. Ghosh, R.N. Millward, T.S. Bridges, R.G. Luthy, Effects of dose and particle size on activated carbon treatment to sequester polychlorinated biphenyls and polycyclic aromatic hydrocarbons in marine sediments, Environ. Toxicol.Chem. Int. J., 24 (2005) 1594–1601.
  53. 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.
  54. B. Nagy, C. Mânzatu, A. Măicăneanu, C. Indolean, L. Barbu-Tudoran, C. Majdik, Linear and nonlinear regression analysis for heavy metals removal using Agaricusbisporusmacrofungus, Arabian J. Chem., 10 (2017) 3569–3579.
  55. S. Idris, Y.A. Iyaka, M.M. Ndamitso, E.B. Mohammed, M.T. Umar, Evaluation of kinetic models of copper and lead uptake from dye wastewater by activated pride of barbados shell, Am. J. Chem., 1 (2011) 47–51.
  56. J.C. Igwe, A.A. Abia, Adsorption isotherm studies of Cd(II), Pb(II) and Zn(II) ions bioremediation from aqueous solution using unmodified and EDTA-modified maize cob, Eclet. Quím., 32 (2007) 33–42.
  57. K.R. Hall, L.C. Eagleton, A. Acrivos, T. Vermeulen, Pore-and-solid-diffusion kinetics in fixed-bed adsorption under constant-pattern conditions, Ind. Eng. Chem. Fundam., 5 (1966) 212–223.
  58. S. Kizito, S. Wu, W.K. Kirui, M. Lei, Q. Lu, H. Bah, R. Dong, Evaluation of slow pyrolyzed wood and rice husks biochar for adsorption of ammonium nitrogen from piggery manure anaerobic digestate slurry, Sci. Total Environ., 505 (2015) 102–112.
  59. T.S. Malarvizhi, T. Santhi, Removal of Ni (II) ions from aqueous solution onto lignite fired fly ash, Res. J. Chem. Environ., 17 (2013) 10–18.
  60. A. Arumugam, V. Ponnusami, Modified SBA-15 synthesized using sugarcane leaf ash for nickel adsorption, Indian J. Chem. Technol., 20 (2013) 101–105.
  61. J. Hisham, K.M. Elsousy, K.A. Hartany, Kinetics, equilibrium, and isotherm of the adsorption of cyanide by MDFSD, Arabian J. Chem., 9 (2016) S198–S203.
  62. W.W. Ngah, A. Kamari, Y.J. Koay, Equilibrium and kinetics studies of adsorption of copper (II) on chitosan and chitosan/PVA beads, Int. J. Biol. Macromol., 34 (2004) 155–161.
  63. D. Kavitha, C. Namasivayam, Experimental and kinetic studies on methylene blue adsorption by coir pith carbon, Bioresour. Technol., 98 (2007) 14–21.