References

  1. D. Maiti, I. Ansari, M.A. Rather, A. Deepa, Comprehensive review on wastewater discharged from the coal-related industries – characteristics and treatment strategies, Water Sci. Technol., 79 (2019) 2023–2035.
  2. J. Jegan, S. Praveen, T. Bhagavathi Pushpa, R. Gokulan, Sorption kinetics and isotherm studies of cationic dyes using groundnut (Arachis hypogaea) shell derived biochar a low-cost adsorbent, Appl. Ecol. Environ. Res., 18 (2020) 1925–1939.
  3. G Ravindiran, G.P. Ganapathy, J. Josephraj, A. Alagumalai, A critical insight into biomass derived biosorbent for bioremediation of dyes, ChemistrySelect, 4 (2019) 9762–9775.
  4. P. Saravanan, B.P. Thillainayagam, G. Ravindiran, J. Josephraj, Evaluation of the adsorption capacity of Cocos nucifera shell derived biochar for basic dyes sequestration from aqueous solution, Energy Sources Part A, (2020) 1–17, doi: 10.1080/15567036.2020.1800142.
  5. A.K. Priya, R. Gokulan, A. Vijayakumar, S. Praveen, Biodecolorization of Remazol dyes using biochar derived from Ulva reticulata: isotherm, kinetics, desorption, and thermodynamic studies, Desal. Water Treat., 200 (2020) 286–295.
  6. G. Kalyani, S. Mahendran, R. Gokulan, Removal of lead metal ion using biowaste of Pithophora cleveana Wittrock and Mimusops elengi, Energy Sources Part A, (2020) 1–19, doi: 10.1080/15567036.2020.1831657.
  7. R. Gokulan, G. Ganesh Prabhu, J. Jegan, Remediation of complex remazol effluent using biochar derived from green seaweed biomass, Int. J. Phytorem., 21 (2019) 1179–1189.
  8. J. Jegan, S. Praveen, T.B. Pushpa, R. Gokulan, Biodecolorization of basic violet 03 using biochar derived from agricultural wastes: isotherm and kinetics, J. Biobased Mater. Bioenergy, 14 (2020) 316–326.
  9. E. Singh, A. Kumar, R. Mishra, S. You, L. Singh, S. Kumar, R. Kumar, Pyrolysis of waste biomass and plastics for production of biochar and its use for removal of heavy metals from aqueous solution, Bioresour. Technol., 320 (2020) 1–9, doi: 10.1016/j.biortech.2020.124278.
  10. A.M. Afzaal, Kinetics, isotherms and thermodynamics of heavy metal ions sorption onto raw and agro-based magnetic biosorbent, Res. Adv. Environ. Sci., 1 (2018) 27–42.
  11. J. Jegan, J. Vijayaraghavan, T. Bhagavathi Pushpa, S.J. Sardhar Basha, Application of seaweeds for the removal of cationic dye from aqueous solution, Desal. Water Treat., 57 (2016) 25812–25821.
  12. J. Thivya, J. Vijayaraghavan, Experimental and mathematical modelling of cationic dye sorption in up-flow packed column using Gracilaria corticata, Desal. Water Treat., 167 (2019) 333–339.
  13. B.S. Journal, Lettuce leaves as biosorbent material to remove heavy metal ions from industrial wastewater, Baghdad Sci. J., 11 (2014) 1164–1170.
  14. G. Neeraj, S. Krishnan, P. Senthil Kumar, K.R. Shriaishvarya, V. Vinoth Kumar, Performance study on sequestration of copper ions from contaminated water using newly synthesized high effective chitosan coated magnetic nanoparticles, J. Mol. Liq., 214 (2016) 335–346.
  15. M.M. Tehrani, S. Abbasizadeh, A. Alamdari, S.E. Mousavi, Prediction of simultaneous sorption of copper(II), cobalt(II) and zinc(II) contaminants from water systems by a novel multifunctionalized zirconia nanofiber, Desal Water Treat., 62 (2017) 403–417.
  16. M. Bozorgi, S. Abbasizadeh, F. Samani, S.E. Mousavi, Performance of synthesized cast and electrospun PVA/ chitosan/ZnO-NH2 nano-adsorbents in single and simultaneous adsorption of cadmium and nickel ions from wastewater, Environ. Sci. Pollut. Res., 25 (2018) 17457–17472.
  17. S. Abbasizadeh, A.R. Keshtkar, M.A. Mousavian, Sorption of heavy metal ions from aqueous solution by a novel cast PVA/TiO2 nanohybrid adsorbent functionalized with amine groups, J. Ind. Eng. Chem., 20 (2014) 1656–1664.
  18. S. Sagar, A. Rastogi, Evaluation of equilibrium isotherms and kinetic parameters for the adsorption of methyl orange dye onto blue green algal biomass, Asian J. Chem., 31 (2019) 1501–1508.
  19. M. Shafiee, M.A. Abedi, S. Abbasizadeh, R.K. Sheshdeh, S.E. Mousavi, S. Shohani, Effect of zeolite hydroxyl active site distribution on adsorption of Pb(II) and Ni(II) pollutants from water system by polymeric nanofibers, Sep. Sci. Technol., 55 (2020) 1994–2011.
  20. H. Seo, M. Lee, S. Wang, Equilibrium and kinetic studies of the biosorption of dissolved metals on Bacillus drentensis immobilized in biocarrier beads, Environ. Eng. Res., 1 (2013) 45–53.
  21. M. Shanmugaprakash, V. Sivakumar, Batch and fixed-bed column studies for biosorption of Zn(II) ions onto pongamia oil cake (Pongamia pinnata) from biodiesel oil extraction, J. Environ. Manage., 164 (2015) 161–170.
  22. S.S. Shukla, L.J. Yu, K. Dorris, A. Shukla, Removal of nickel from aqueous solutions by sawdust, J. Hazard. Mater., 121 (2005) 243–246.
  23. G. Vázquez, G. Antorrena, J. González, M.D. Doval, Adsorption of heavy metal ions by chemically modified Pinus pinaster bark, Bioresour. Technol., 48 (1994) 251–255.
  24. G. Annadurai, R.S. Juang, D.J. Lee, Adsorption of heavy metals from water using banana and orange peels, Water Sci. Technol., 47 (2003) 185–190.
  25. K. Wilson, H. Yang, C.W. Seo, W.E. Marshall, Select metal adsorption by activated carbon made from peanut shells, Bioresour. Technol., 97 (2006) 2266–2270.
  26. R.R. Bansode, J.N. Losso, W.E. Marshall, R.M. Rao, R.J. Portier, Adsorption of metal ions by pecan shell-based granular activated carbons, Bioresour. Technol., 89 (2003) 115–119.
  27. M.M. Rahman, M. Adil, A.M. Yusof, Y.B. Kamaruzzaman, R.H. Ansary, Removal of heavy metal ions with acid activated carbons derived from oil palm and coconut shells, Materials, 60 (1994) 177–182.
  28. P. Brown, I. Atly Jefcoat, D. Parrish, S. Gill, E. Graham, Evaluation of the adsorptive capacity of peanut hull pellets for heavy metals in solution, Adv. Environ. Res., 4 (2000) 19–29.
  29. S.R. Shukla, R.S. Pai, Adsorption of Cu(II), Ni(II) and Zn(II) on modified jute fibres, Bioresour. Technol., 96 (2005) 1430–1438.
  30. M.A. Hossain, H.H. Ngo, W.S. Guo, L.D. Nghiem, F.I. Hai, S. Vigneswaran, T.V. Nguyen, Competitive adsorption of metals on cabbage waste from multi-metal solutions, Bioresour. Technol., 160 (2014) 79–88.
  31. V. Boonamnuayvitaya, C. Chaiya, W. Tanthapanichakoon, S. Jarudilokkul, Removal of heavy metals by adsorbent prepared from pyrolyzed coffee residues and clay, Sep. Purif. Technol., 35 (2004) 11–22.
  32. S.H. Gharaibeh, W.Y. Abu-El-Sha’r, M.M. Al-Kofahi, Removal of selected heavy metals from aqueous solutions using processed solid residue of olive mill products, Water Res., 32 (1998) 498–502.
  33. J.H. Park, Y.S. Ok, S.H. Kim, J.S. Cho, J.S. Heo, R.D. Delaune, D.C. Seo, Competitive adsorption of heavy metals onto sesame straw biochar in aqueous solutions, Chemosphere, 142 (2016) 77–83.
  34. M. Adeli, Y. Yamini, M. Faraji, Removal of copper, nickel and zinc by sodium dodecyl sulphate coated magnetite nanoparticles from water and wastewater samples, Arabian J. Chem., 28 (1993) 1261–1276.
  35. D. Kołodyńska, J. Krukowska, P. Thomas, Comparison of sorption and desorption studies of heavy metal ions from biochar and commercial active carbon, Chem. Eng. J., 307 (2017) 353–363.
  36. K. Vijayaraghavan, U.M. Joshi, S. Kamala-Kannan, An attempt to develop seaweed-based treatment technology for the remediation of complex metal-bearing laboratory wastewaters, Ecol. Eng., 47 (2012) 278–283.
  37. K. Vijayaraghavan, U.M. Joshi, R. Balasubramanian, Removal of metal ions from storm-water runoff by low-cost sorbents: batch and column studies, J. Environ. Eng., 136 (2010) 1113–1118.
  38. A. Leusch, Z.R. Holan, B. Volesky, Biosorption of heavy metals (Cd, Cu, Ni, Pb, Zn) by chemically‐reinforced biomass of marine algae, J. Chem. Technol. Biotechnol., 62 (1995) 279–288.