References

  1. Y. Liu, S. Yang, J. Hong, C. Sun, Low-temperature preparation and microwave photocatalytic activity study of TiO2-mounted activated carbon, J. Hazard. Mater., 142 (2007) 208–215.
  2. M. Alkan, O. Demirbas, Celikc¸ S. Apa, M. Dogan, Sorption of acid red 57 from aqueous solutions onto sepiolite, J. Hazard. Mater., 116 (2004) 135–145.
  3. K. Turhan, S.A.Ozturkcan, Decolorization and degradation of reactive dye in aqueous solution by ozonation in a semibatch bubble column reactor, Water Air Soil Pollut., 224 (2012) 1353–1357.
  4. H.I. Owamah, I.S. Chukwujindu, A.K. Asiagwu, Biosorptive capacity of yam peels waste for the removal of dye from aqueous solutions, Civ. Environ. Res., 3 (2013) 36–48.
  5. L. Fan, C. Luo, M. Sun, X. Li, F. Lu, H. Qiu, Preparation of novel magnetic chi-tosan/graphene oxide composite as effective adsorbents toward methylene blue, Bioresour. Technol., 114 (2012) 703–706.
  6. A. Walcarius, L. Mercier, Mesoporous organosilica adsorbents: nanoengineered materials for removal of organic and inorganic pollutants, J. Mater. Chem., 20 (2010) 4478–4511.
  7. B.V. Bruggen, C. Vandecasteele, Removal of pollutants from surface water and groundwater by nanofiltration: overview of possible applications in the drinking water industry, Environ. Pollut., 122 (2003) 435–445.
  8. L.K. Posey, M.G. Viegas, A.J. Boucher, C. Wang, K.R. Stambaugh, M.M. Smith, B.G. Carpenter, B.L. Bridges, S.E. Baker, D.A. Perry, Surface-enhanced vibrational and TPD study of Nitroaniline isomers, J. Phys. Chem. C, 111 (2007) 12352–12360.
  9. C.M. Chen, A.C. Lua, Lung toxicity of paraquat in the rat, J. Toxicol. Environ. Health Part A, 60 (2000) 477–487.
  10. N.S. Awwad, A.A. El-zahhar, A.M. Fouda, H.A. Ibrahium, Removal of heavy metal ions from ground and surface water samples using carbons derived from date pits, J. Environ. Chem. Eng., 1 (2013) 416–423.
  11. N. Ando, Y. Matsui, R. Kurotobi,; Y. Nakano, T. Matsushita, K. Ohno, Comparison of natural organic matter adsorption capacities of super-powdered activated carbon and powdered activated carbon, Water Res., 44 (2010) 4127–4136.
  12. M.A. Yahya, Z. Al-Qodah, C.W.Z. Ngah, Agricultural bio-waste materials as potential sustainable precursors used for activated carbon production: a review, Renewable Sustainable Energy Rev., 46 (2015) 218–235.
  13. P.G. Ren, D.X. Yan, X. Ji, T. Chen, Z.M. Li, Temperature dependence of graphene oxide reduced by hydrazine hydrate, Nanotechnology, 22 (2011) 055705–055713.
  14. W. Hummer, R. Offeman, Preparation of graphite oxide, J. Am. Chem. Soc., 80 (1958) 1339–1339.
  15. N.N. Zhang, H.X. Qiu, Y. Liu, W. Wang, Y. Li, X.D. Wang, J.P. Gao, Fabrication of gold nanoparticle/graphene oxide nanocomposites and their excellent catalytic performance, J. Mater. Chem., 21 (2011) 11080–11083.
  16. M. Naushad, Surfactant assisted nano-composite cation exchanger: development, characterization and applications for the removal of toxic Pb2+ from aqueous medium, Chem. Eng. J., 235 (2014) 100–108.
  17. Z.J. Fan, W. Kai, J. Yan, T. Wei, L.J. Zhi, J. Feng, Y.M. Ren, L.P. Song, F. Wei, Facile synthesis of graphene nanosheets via Fe reduction of exfoliated graphite oxide, ACS Nano, 5 (2011) 191–198.
  18. H. Li, G. Zhu, Z.H. Liu, Z. Yang, Z. Wang, Fabrication of a hybrid graphene/layered double hydroxide material, Carbon, 48 (2010) 4391–4396.
  19. M. Veerapandian, M.H. Lee, K. Krishnamoorthy, K. Yun, Synthesis, characterization and electrochemical properties of functionalized graphene oxide, Carbon, 50 (2012) 4228–4238.
  20. C. Pasquali, H. Herrera, Pyrolysis of lignin and IR analysis of residues, Thermochim. Acta, 293 (1997) 39–46.
  21. I. Ozdemir, M. Şahin, R. Orhan, M. Erdem, Preparation and characterization of activated carbon from grape stalk by zinc chloride activation, Fuel Process. Technol., 125 (2014) 200–206.
  22. M. Hara, T. Yoshida, A. Takagaki, T. Takata, J.N. Kondo, S. Hayashi, K. Domen, A carbon material as a strong protonic acid, Angew. Chem. Int. Ed., 43 (2004) 2955–2958.
  23. M. Toda, A. Takagaki, M. Okamura, J.N. Kondo, S. Hayashi, K. Domen, M. Hara, Biodiesel made with sugar catalyst, Nature, 438 (2005) 178–178.
  24. S. Suganuma, K. Nakajima, M. Kitano, D. Yamaguchi, H. Kato, S. Hayashi, M. Hara, Hydrolysis of cellulose by amorphous carbon bearing SO3H, COOH, and OH groups, J. Am. Chem. Soc., 130 (2008) 12787–12793.
  25. Z.A. AL-Othman, R. Ali, Mu. Naushad, Hexavalent chromium removal from aqueous medium by activated carbon prepared from peanut shell: adsorption kinetics, equilibrium and thermodynamic studies, Chem. Eng. J., 184 (2012) 238–247.
  26. M. Naushad, T. Ahamad, B.M. Al-Maswari, A.A. Alqadami, S.M. Alshehri, Nickel ferrite bearing nitrogen-doped mesoporous carbon as efficient adsorbent for the removal of highly toxic metal ion from aqueous medium, Chem Eng. J., 330 (2017) 1351–1360.
  27. L. Zhang, X. Zhou, X. Guo, X. Song, X. Liu, Investigation on the degradation of acid fuchsin induced oxidation by MgFe2O4 under microwave irradiation, J. Mol. Catal. A: Chem., 335 (2011) 31–37.
  28. C. Marún, L.D. Conde, L.S. Sui, Catalytic oligomerization of methane via microwave heating, J. Phys. Chem. A, 103 (1999) 4332–4340.
  29. W.H. Kuan, Y.C. Chan, pH-dependent mechanisms of methylene blue reacting with tunneled manganese oxide pyrolusite, J. Hazard. Mater., 239 (2012) 152–159.
  30. C. Doornkamp, V. Ponec, The universal character of the Mars and Van Krevelen mechanism, J. Mol. Catal. A: Chem., 62 (2000) 19–32.
  31. A.A. Alqadami, M. Naushad, Z.A. Alothman, A.A. Ghfar, Novel metal−organic framework (MOF) based composite material for the sequestration of U(VI) and Th(IV) metal ions from aqueous environment, ACS Appl. Mater. Interfaces, 9 (2017) 36026–36037.
  32. M. Naushad, T. Ahamad, G. Sharma, A.H. Al-Muhtaseb, A.B. Albadarin, M.M. Alam, Z.A. ALOthman, S.M. Alshehri, A.A. Ghfar, Synthesis and characterization of a new starch/SnO2 nanocomposite for efficient adsorption of toxic Hg2+ metal ion, Chem. Eng. J., 300 (2016) 306–316.
  33. F.V. Ferreira, F.S. Brito, W. Franceschi, E.A.N. Simonetti, L.S. Cividanes, M. Chipara, K. Lozano, Functionalized graphene oxide as reinforcement in epoxy based nanocomposites, Surf. Interfaces, 10 (2018) 100–109.
  34. A. Hosseinzadeh, S. Bidmeshkipour, Y. Abdi, E. Arzi, S. Mohajerzadeh, Graphene based strain sensors: a comparative study on graphene and its derivatives, Appl. Surf. Sci., 448 (2018) 71–77.
  35. B.Y.Z. Hiew, L.Y. Lee, X.J. Lee, S. Thangalazhy-Gopakumar, S. Gan, S.S. Lim, G.T. Pan, T.C.K. Yang, W.S. Chiu, P.S. Khiew, Review on synthesis of 3D graphene-based configurations and their adsorption performance for hazardous water pollutants, Process Saf. Environ., 116 (2018) 262–286.
  36. I. Khurana, A. Saxena, J.M. Khurana, P.K. Rai, Removal of dyes using graphene-based composites: a review, Water Air Soil Pollut., 228 (2017) 174–180.
  37. A. Lerf, H. He, M. Forster, J. Klinowski, Structure of graphite oxide revisited, J. Phys. Chem. B, 102 (1998) 4477–4482.
  38. A. Lerf, Graphite Oxide Story: From the Beginning Till the Graphene Hype, A.M. Dimiev, S. Eigler, Eds., Graphene Oxide: Fundamentals and Applications, Wiley, USA, 2017, pp. 3–36.
  39. Y. Cui, Y.H. Lee, J.W. Yang, Impact of carboxyl groups in graphene oxide on chemoselective alcohol oxidation with ultralow carbocatalyst loading, Sci. Rep. 7 (2017) 3146.
  40. K. Gupta, O.P. Khatri, Reduced graphene oxide as an effective adsorbent for removal of malachite green dye: plausible adsorption pathways, J. Colloid Interface Sci., 501 (2017) 11–21.
  41. P.A. Denis, F. Iribarne, A first-principles study on the interaction between alkyl radicals and graphene, Chem. Eur. J. 18 (2012) 7568–7574.
  42. S.T. Yang, S. Chen, Y. Chang, A. Cao, Y. Liu, H. Wang, Removal of methylene blue from aqueous solution by graphene oxide, J. Colloid Interface Sci., 359 (2011) 24–29.
  43. B. Li, H. Cao, G. Yin, Mg(OH)2@reduced graphene oxide composite for removal of dyes from water, J. Mater. Chem., 21 (2011) 13765–13768.
  44. H. Sadegh, G.A.M. Ali, V.K. Gupta, A.S.H. Makhlouf, R.S. Ghoshekandi, M.N. Nadagouda, M. Sillanpa, M. Elżbieta, The role of nanomaterials as effective adsorbents and their applications in wastewater treatment, J. Nanostruct. Chem., 7 (2017) 1–14.
  45. X. Guo, L. Qu, M. Tian, S. Zhu, X. Zhang, X. Tang, K. Sun, Chitosan/graphene oxide composite as an effective adsorbent for reactive red dye removal, Water Environ. Res., 88 (2016) 579–588.
  46. P. Nuengmatcha, R. Mahachai, S. Chanthai, Adsorption capacity of the as-synthetic graphene oxide for the removal ofalizarin red S dye from aqueous solution, Orient. J. Chem. 32 (2016) 1399–1410.
  47. A. Bhattacharyya, B. Banerjee, S. Ghorai, D. Rana, I. Roy, G. Sarkar, N. Saha, S. De, T.K. Ghoshd, S. Sadhukhan, D. Chattopadhyay, Development of an auto-phase separable and reusable graphene oxide-potato starch based cross-linked bio-composite adsorbent for removal of methylene blue dye, Int. J. Biol. Macromol., 116 (2018) 1037–1048.
  48. S. Lagergren, About the theory of so-called adsorption of soluble substances, Kungliga Svenska Ventenskapsakademiens Handlingar, 24 (1898) 1–39.
  49. Y.S. Ho, E. McKay, The kinetics of sorption of basic dyes from aqueous solution by sphagnum moss peat, Can. J. Chem. Eng., 76 (1998) 822–827.
  50. Y.S. Ho, G. McKay, Application of kinetic models to the sorption of copper(II) onto peat, Sci. Technol., 20 (2002) 797–815.
  51. S.P. Mishra, Adsorption-desorption of heavy metal ions, Curr. Sci. India, 107 (2014), 601–612.
  52. W. Peng, H. Li, Y. Liu, Sh. Song, A review on heavy metal ions adsorption from water by graphene oxide and its composites, J. Mol. Liq., 230 (2017) 496–504.
  53. V. Singh, D. Joung, L. Zhai, S. Das, S.I. Khondaker, S. Seal, Graphene based materials, past, present and future, Prog. Mater. Sci., 56 (2011) 1178–1271.
  54. A. Tripathi, M.R. Ranjan, Heavy metal removal from wastewater using low cost adsorbents, J. Biorem. Biodegrad., 6 (2015) 315–319.