References

  1. X. Wu, C. Liu, H. Qi, X. Zhang, J. Dai, Q. Zhang, L. Zhang, Y. Wu, X. Peng, Synthesis and adsorption properties of halloysite/carbon nanocomposites and halloysite-derived carbon nanotubes, Appl. Clay Sci., 119 (2016) 284–293.
  2. P.S. Kunwar, M. Amrita, S. Sarita, O. Priyanka, Liquid-phase adsorption of phenols using activated carbons derived from agricultural waste material, J. Hazard. Mater., 150 (2008) 626–641.
  3. K. Li, Z. Zheng, Y. Li, Characterization and lead adsorption properties of activated carbons prepared from cotton stalk by one step H3PO4 activation, J. Hazard. Mater., 181 (2010) 440–450.
  4. H. Demiral, E. Baykul, M. Deniz-Gezer, S. Erkoç, A. Engin, M.C. Baykul, Preparation and characterization of activated carbon from chestnut shell and its adsorption characteristics for lead, Sep. Sci. Technol., 49 (2014) 2711–2720.
  5. A. Xie, J. Dai, J. Cui, J. Lang, M. Wei, X. Dai, C. Li, Y. Yan, Novel graphene oxide−confined nanospace directed synthesis of glucose-based porous carbon nanosheets with enhanced adsorption performance, ACS Sustainable Chem. Eng., 5 (2017) 11566–11576.
  6. X. He, K.B. Male, P.N. Nesterenko, D. Brabazon, B. Paull, J.H. Luong, Adsorption and desorption of methylene blue on porous carbon monoliths and nanocrystalline cellulose, ACS Appl. Mater. Interfaces, 5 (2013) 8796–8804.
  7. M. Otero, F. Rozada, A. Morán, L. Calvo, A.I. FandGarcía, Removal of heavy metals from aqueous solution by sewage sludge based sorbents: competitive effects, Desalination, 239 (2009) 46–57.
  8. A. Salama, N. Shukry, M. El-Sakhawy, Carboxymethyl celluloseg- poly (2-(dimethylamino) ethyl methacrylate) hydrogel as adsorbent for dye removal, Int. J. Biol. Macromol., 73 (2015) 72–75.
  9. C. Namasivayam, D. Kavitha, Removal of Congo Red from water by adsorption onto activated carbon prepared from coir pith, an agricultural solid waste, Dyes Pigm., 54 (2002) 47–58.
  10. D. Sud, G. Mahajan, M.P. Kaur, Agricultural waste material as potential adsorbent for sequestering heavy metal ions from aqueous solutions–a review, Bioresour. Technol., 99 (2008) 6017–6027.
  11. A. Demirbas, Agricultural based activated carbons for the removal of dyes from aqueous solutions: a review, J. Hazard. Mater., 167 (2009) 1–9.
  12. T.B. İyim , G. Güçlü, Removal of basic dyes from aqueous solutions using natural clay, Desalination, 249 (2009) 1377–1379.
  13. E. Errais, J. Duplay, F. Darragi, I. M’Rabet, A. Aubert, F. Huber, G. Morvan, Efficient anionic dye adsorption on natural untreated clay: kinetic study and thermodynamic parameters, Desalination, 275 (2011) 74–81.
  14. M.S.U. Rehman, M. Munir, M. Ashfaq, N. Rashid, M.F. Nazar, M. Danish, J.I. Han, Adsorption of brilliant Green dye from aqueous solution onto red clay, Chem. Eng. J., 228 (2013) 54–62.
  15. Z. Ali, M. Hussain, M. Arshad, Saccharification of corn cobs an agro-industrial waste by sulphuric acid for the production of monomeric sugars, Int. J. Biosci., 5 (2014) 204–213.
  16. UNEP, Fiduciary Responsibility: Legal and Practical Aspects of Integrating Environmental, Social and Governance Issues into Institutional Investment, UNEP FI, Geneva, 2009.
  17. Q. Wang, H. Li, L. Chen, X. Huang, Monodispersed hard carbon spherules with uniform nanopores, Carbon, 39 (2001) 2211–2214.
  18. S.H. Yu, X.J. Cui, L. Li, K. Li, B. Yu, M. Antonietti, H. Cölfen, From starch to metal/carbon hybrid nanostructures: hydrothermal metal‐catalyzed carbonization, Adv. Mater., 16 (2004) 1636–1640.
  19. B. Hu, S.H. Yu, K. Wang, L. Liu, X.W. Xu, Functional carbonaceous materials from hydrothermal carbonization of biomass: an effective chemical process, Dalton Trans., 40 (2008) 5414–5423.
  20. B. Hu, K. Wang, L. Wu, S.H. Yu, M. Antonietti, M.M. Titirici, Engineering carbon materials from the hydrothermal carbonization process of biomass, Adv. Mater., 22 (2010) 813–828.
  21. M.M. Titirici, M. Antonietti, Chemistry and materials options of sustainable carbon materials made by hydrothermal carbonization, Chem. Soc. Rev., 39 (2010) 103–116.
  22. J. Gülen, Z. Altın, M. Özgür, Adsorption of amitraz on the clay, Am. J. Eng. Res., 2 (2013) 1–8.
  23. E. Sabah, M. Majdan, Removal of phosphorus from vegetable oil by acid-activated Sepiolite, J. Food Eng., 91 (2009) 423–427.
  24. E. Eren, O. Cubuk, H. Ciftci, Adsorption of basic dye from aqueous solutions by modified Sepiolite: equilibrium, kinetics and thermodynamics study, Desalination, 249 (2010) 88–96.
  25. A. Celebioglu, T. Uyar, Cyclodextrinnanofibers by electrospinning, Chem. Comun., 46 (2010) 6903–6905.
  26. M.J. Prauchner, V.M. Pasa, N.D. Molhallem, C. Otani, S. Otani, L.C. Pardini, Structural evolution of Eucalyptus tar pitch-based carbons during carbonization, Biomass Bioenergy, 28 (2005) 53–61.
  27. Z. Liu, F.S. Zhang, R. Sasai, Arsenate removal from water using Fe3O4-loaded activated carbon prepared from waste biomass, Chem. Eng. J., 160 (2010) 57–62.
  28. Q. Yu, S. Deng, G. Yu, Selective removal of perfluorooctanesulfonate from aqueous solution using chitosan-based molecularly imprinted polymer adsorbents, Water Res., 42 (2008) 3089–3097.
  29. H. Peng, H. Wang, J. Wu, G. Meng, Y. Wang, Y. Shi, Z. Liu, X. Guo, Preparation of superhydrophobic magnetic cellulose sponge for removing oil from water, Ind. Eng. Chem. Res., 55 (2016) 832–838.
  30. Y. Huang, Y. Liu, G. Zhao, J.Y. Chen, Sustainable activated carbon fiber from sawdust by reactivation for high-performance supercapacitors, J. Mater. Sci., 52 (2017) 478–488.
  31. A.I. Adeogun, E.A. Ofudje, M.A. Idowu, S.O. Kareem, S. Vahidhabanu, B.R. Babu, Biowaste-derived hydroxyapatite for effective removal of reactive yellow 4 dye: equilibrium, kinetic, and thermodynamic studies, ACS Omega, 3 (2018) 1991–2000.
  32. A.I. Adeogun, M.A. Idowu, O.K. Akiode, Biosorption and Bioremediation of Cu(II) contaminated water by Saccharum officinarum: effect of oxalic acid modification on equilibrium, kinetic and thermodynamic parameters, Bioresour. Bioprocess., 3 (2016) 1–16.
  33. S. Lagergren, About the theory of so-called adsorption of soluble substances, KungligaSuenk, Vetenskapsakademiens, Handlinger Band., 24 (1889) 1–39.
  34. Y.S. Ho, W.T. Chiu, C.C. Wang, Regression analysis for the sorption isotherms of basic dyes on sugarcane dust, Bioresour. Technol., 96 (2005) 1285–1291.
  35. S.J. Elovich, in: J.H. Schulman, Ed., Proceedings of the 2nd International Congress on Surface Activity, 11, Academic Press, Inc., New York, NY, 253 (1959).
  36. W.J. Weber, J.C. Morris, Kinetics of adsorption on carbon from solution, J. Sanit. Eng. Div., 89 (1963) 31–60.
  37. I. Langmuir, The adsorption of gases on plane surfaces of glass, mica and platinum, J. Am. Chem., 40 (1918) 1361–1403.
  38. H.M. Freundlich, Uber die adsorption in lösungen, Z. Phys. Chem., 57 (1906) 385–470.
  39. M.J. Temkin, V. Pyzhev, Kinetics of ammonia synthesis on promoted iron catalysts, Acta Physiochim. URSS., 12 (1940) 217–222.
  40. M.M Dubinin, L.V. Radushkevich, Equation of the characteristic curve of the activated charcoal, Chem. Zentralbl., 1 (1947) 875–890.
  41. J.P. Hobson, Physical adsorption isotherms extending from ultrahigh vacuum to vapor pressure, J. Phys. Chem., 73 (1969) 2720–2727.
  42. Q. Wang, H. Li, L. Chen, X. Huang, Monodispersed hard carbonspherules with nanopores, Carbon, 39 (2001) 2211–2214.
  43. M. Zenasni, B. Meroufel, A. Merlin, B. George, Adsorption of Congo red from aqueous solution using CTAB-kaolin from Bechar Algeria, J. Surf. Eng. Mater. Adv. Technol., 4 (2014) 332–341.
  44. V. Vimonses, S. Lei, B. Jin, C.W.K. Chow, C. Saint, Kinetic study and equilibrium isotherm analysis of Congo Red adsorption by clay materials, Chem. Eng. J., 148 (2009) 354–364.
  45. H. Chen, J. Zhao, Adsorption study for removal of Congo red anionic dye using organo-attapulgite, Adsorption, 15 (2009) 381–389.
  46. L. Lian, L. Guo, C. Guo Adsorption of Congo red from aqueous solutions onto Ca-bentonite, J. Hazard. Mater., 161 (2009) 126–131.