References

  1. A.S. Poursani, A. Nilchi, A. Hassani, S. Tabibian, L.A. Amraji, Synthesis of nano–γ–Al2O3/chitosan beads (AlCBs) and continuous heavy metals removal from liquid solution, Int. J. Environ. Sci. Technol., 14 (2017) 1459–1468.
  2. L.M. Camacho, S. Ponnusamy, I. Campos, T.A. Davis, S. Deng, In: Evaluation of Novel Modified Activated Alumina as Adsorbent for Arsenic Removal, Handbook of Arsenic Toxicology, Elsevier Inc., 2015, pp. 121–136.
  3. K. Taleb, J. Rusmirović, M. Rancić, J. Nikolić, S. Drmanić, Z. Velicković, A. Marinković, Efficient pollutants removal by amino-modified nanocellulose impregnated with iron oxide, J. Serb. Chem. Soc., 81 (2016) 1199–1213.
  4. M.A. Barakat, New trends in removing heavy metals from industrial wastewater, Arabian J. Chem., 4 (2011) 361–377.
  5. E. Katsou, S. Malamis, K.J. Haralambous, M. Loizidou, Use of ultrafiltration membranes and aluminosilicate minerals for nickel removal from industrial wastewater, J. Membr. Sci., 360 (2010) 234–249.
  6. C.F. Bennani, O. M’hiri, Comparative study of the removal of heavy metals by two nanofiltration membranes, Desal. Wat. Treat., 53 (2015) 1024–1030.
  7. L. Charerntanyarak, Heavy metals removal by chemical coagulation and precipitation, Water Sci. Technol., 39 (1999) 135–138.
  8. Y. Ren, N. Yan, Q. Wen, Z. Fan, T. Wei, M. Zhang, J. Ma, Graphene/δ-MnO2 composite as adsorbent for the removal of nickel ions from wastewater, Chem. Eng. J., 175 (2011) 1–7.
  9. P. Hadi, J. Barford, G. McKay, Synergistic effect in the simultaneous removal of binary cobalt–nickel heavy metals from effluents by a novel e–waste–derived material, Chem. Eng. J., 228 (2013) 140–146.
  10. W. Liu, W. Sun, Y. Han, M. Ahmad, J. Ni, Adsorption of Cu(II) and Cd(II) on titanate nanomaterials synthesized via hydrothermal method under different NaOH concentrations: role of sodium content, Colloids Surf., A, 452 (2014) 138–147.
  11. S. Tabesh, F. Davar, M. Reza, L. Estarki, Preparation of γ-Al2O3 nanoparticles using modified sol-gel method and its use for the adsorption of lead and cadmium ions, J. Alloys Compd., 730 (2018) 441–449.
  12. M. Amrollahi, M.T. Ghaneian, M. Tabatabaee, M.H. Ehrampoush, Highly efficient catalyst for removal of heavy metal ions modified by a novel Schiff base ligand, J. Nanostruct., (2017). Articles in Press, Available Online from 23 April 2017.
  13. A. Chatterjee, J.K. Basu, A.K. Jana, Alumina-silica nano-sorbent from plant fly ash and scrap aluminium foil in removing nickel through adsorption, Powder Technol., 354 (2019) 792–803.
  14. A. Teimouri, N. Ghased, S.G. Nasab, S. Habibollahi, Statistical design of experiment as a tool for optimization of methylene blue sorption on CS/MCM-41/nano-γ alumina as a novel and environmentally friendly adsorbent: isotherm and kinetic studies, Desal. Wat. Treat., 139 (2019) 327–341.
  15. M.T. Sultan, H.S. Al-Lami, A.H. Al-Dujiali, Synthesis and characterization of alumina-grafted acrylic acid monomer and polymer and its adsorption of phenol and p-chlorophenol, Desal. Wat. Treat., 150 (2019) 192–203.
  16. J. Čejka, Organized mesoporous alumina: synthesis, structure and potential in catalysis, Appl. Catal., A, 254 (2003) 327–338.
  17. A. Stein, R.C. Schroden, Colloidal crystal templating of three– dimensionally ordered macroporous solids: materials for photonics and beyond, Curr. Opin. Solid State Mater. Sci., 5 (2001) 553–564.
  18. L.Z. Fan, Y.S. Hu, J. Maier, P. Adelhelm, B. Smarsly, M. Antonietti, High electroactivity of polyaniline in supercapacitors by using a hierarchically porous carbon monolith as a support, Adv. Funct. Mater., 17 (2007) 3083–3087.
  19. M. Farahmandjou, N. Golabiyan, Synthesis and characterization of alumina (Al2O3) nanoparticles prepared by simple sol-gel method, Int. J. Bio-Inorg. Hybr. Nanomater., 5 (2016) 73–77.
  20. R.J. Kalbasi, M. Kolahdoozan, M. Rezaei, Synthesis and characterization of polyvinyl amine-SiO2-Al2O3 as a new and inexpensive organic-inorganic hybrid basic catalyst, J. Ind. Eng. Chem., 18 (2012) 909–918.
  21. Y. Xin, Y. Takeuchi, M. Hattori, T. Shirai, Enhanced electrical conductivity of alumina/nano-carbon ceramic composite via iodine impregnation of gel-casted alumina body and reductive sintering, J. Eur. Ceram. Soc., 39 (2019) 4440–4444.
  22. A. Majedi, A. Abbasi, F. Davar, Green synthesis of zirconia nanoparticles using the modified Pechini method and characterization of its optical and electrical properties, J. Sol– Gel Sci. Technol., 77 (2016) 542–552.
  23. T.C. Gomes, D. Kumar, L. Fugikawa-Santos, N. Alves, J. Kettle, Optimization of the anodization processing for aluminum oxide gate dielectrics in ZnO thin film transistors by multivariate analysis, ACS Comb. Sci., 21 (2019) 370–379.
  24. Z. Zang, A. Nakamura, J. Temmyo, Single cuprous oxide films synthesized by radical oxidation at low temperature for PV application, Opt. Express, 21 (2013) 11448–11456.
  25. M.H. Yousefi, M.M. Zerafat, M.S. Doodeji, S. Sabbaghi, Investigation of dip-coating parameters effect on the performance of alumina-polydimethylsiloxane nanofiltration membranes for desalination, J. Water Environ. Nanotechnol., 2 (2017) 235–242.
  26. Z. Zang, X. Zeng, J. Du, M. Wang, X. Tang, Femtosecond laser direct writing of microholes on roughened ZnO for output power enhancement of InGaN lightemitting diodes, Opt. Lett., 41 (2016) 3463–3466.
  27. S.A.C. Carabineiro, P.B. Tavares, J.L. Figueiredo, Gold on oxidedoped alumina supports as catalysts for CO oxidation, Appl. Nanosci., 2 (2012) 35–46.
  28. E. Soleimani, N. Zamani, Surface modification of alumina nanoparticles: a dispersion study in organic media, Acta Chim. Slov., 64 (2017) 644–653.
  29. L.A.S.A. Prado, M. Sriyai, M. Ghislandi, A.B. Timmons, K. Schulte, Surface modifcation of alumina nanoparticles with silane coupling agents, J. Braz. Chem. Soc., 21 (2010).
  30. N.K. Koju, X. Song, Q. Wang, Z. Hu, C. Colombo, Cadmium removal from simulated groundwater using alumina nanoparticles: behaviors and mechanisms, Environ. Pollut., 240 (2018) 255–266.
  31. S.E. Cabaniss, Forward modeling of metal complexation by NOM: II. Prediction of binding site properties, Environ. Sci. Technol., 45 (2011) 3202–3209.
  32. N.M. Bravaya, S.L. Saratovskikh, A.N. Panin, E.E. Faingol’d, I.V. Zharkov, O.N. Babkina, S.G. Vasil’ev, M.L. Bubnova, V.I. Volkov, M.V. Lobanov, Influence of silane coupling agent on the synthesis and properties of nanocomposites obtained via in situ catalytic copolymerization of ethylene and propylene in the presence of modified Nafen™ Al2O3 nanofibers, Polymer, 174 (2019) 114–122.
  33. A. Drah, N.Z. Tomić, Z. Veličić, A.D. Marinković, Ž. Radovanović, Z. Veličković, R. Jančić-Heinemann, Highly ordered macroporous γ–alumina prepared by a modified sol–gel method with a PMMA microsphere template for enhanced Pb2+, Ni2+ and Cd2+ removal, Ceram. Int., 43 (2017) 13817–13827.
  34. L.S. Eaton, A.D. Clesceri, Standard Methods for the Examination of Water and Wastewater, 22nd ed., American Water Works Association (AWWA), Washington, D.C., 2012.
  35. Z.S. Veličković, G.D. Vuković, A.D. Marinković, M.S. Moldovan, A.A. Perić-Grujić, P.S. Uskoković, M.D. Ristić, Adsorption of arsenate on iron(III) oxide coated ethylenediamine functionalized multiwall carbon nanotubes, Chem. Eng. J., 181– 182 (2012) 174–181.
  36. G.D. Vuković, A.D. Marinković, S.D. Škapin, M.Đ. Ristić, R. Aleksić, A.A. Perić–Grujić, P.S. Uskoković, Removal of lead from water by amino modified multi–walled carbon nanotubes, Chem. Eng. J., 173 (2011) 855–865.
  37. Y.K. Park, E.H. Tadd, M. Zubris, R. Tannenbaum, Size-controlled synthesis of alumina nanoparticles from aluminum alkoxides, Mater. Res. Bull., 40 (2005) 1506–1512.
  38. L. Wu, Z. Yin, Sulfonic acid functionalized nano γ–Al2O3 catalyzed per–Oacetylated of carbohydrates, Carbohydr. Res., 365 (2013) 14–19.
  39. Y. Wang, W. Eli, L. Zhang, H. Gao, Y. Liu, P. Li, A new method for surface modification of nano–CaCO3 and nano–Al2O3 at room temperature, Adv. Powder Technol., 21 (2010) 203–205.
  40. T.F. Gan, B.Q. Shentu, Z.X. Weng, Modification of CeO2 and its effect on the heat–resistance of silicone rubber, Chin. J. Polym. Sci., 26 (2008) 489–494.
  41. Z. Veličković, Z. Bajić, M. Ristić, V. Đokić, A. Marinković, P. Uskoković, M. Vuruna, Modification of multi–wall carbon nanotubes for the removal of cadmium, lead and arsenic from wastewater, Dig. J. Nanomater. Biostruct., 8 (2013) 501–511.
  42. H. Sontheimer, J.C. Crittenden, R.S. Scott, Activated Carbon for Water Treatment. In Activated carbon for water treatment; DVGW-Forschungsstelle, Engler-Bunte-Institut, Universitat Karlsruhe, 1988, pp. 66–67.
  43. G. Lazouzi, M.M. Vuksanović, N.Z. Tomić, M. Mitrić, M. Petrović, V. Radojević, R. Jančić-Hainemann, Optimized preparation of alumina based fillers for tuning composite properties, Ceram. Int., 44 (2018) 7442–7449.
  44. D. Han, X. Li, L. Zhang, Y. Wang, Z. Yan, S. Liu, Hierarchically ordered meso/ macroporous γ–alumina for enhanced hydrodesulfurization performance, Microporous Mesoporous Mater., 158 (2012) 1–6.
  45. B. Arkles, Silane Coupling Agents: Connecting Across Boundaries, Gelest, Inc., Morrisville, PA, 3rd ed., 2014.
  46. G. Arslan, M. Özmen, B. Gündüz, X.G. Zhan, M. Ersöz, Surface modification of glass beads with an aminosilane monolayer, Turk. J. Chem., 30 (2006) 203–210.
  47. A. Bhat, G.B. Megeri, C. Thomas, H. Bhargava, C. Jeevitha, S. Chandrashekar, G.M. Madhu, Adsorption and optimization studies of lead from aqueous solution using γ–alumina, J. Environ. Chem. Eng., 3 (2015) 30–39.
  48. S. Agarwal, I. Tyagi, V.K. Gupta, M.H. Dehghani, J. Jaafari, D. Balarak, M. Asif, Rapid removal of noxious nickel(II) using novel γ–alumina nanoparticles and multiwalled carbon nanotubes: kinetic and isotherm studies, J. Mol. Liq., 224 (2016) 618–623.
  49. N. Obradović, S. Filipović, S. Marković, M. Mitrić, J. Rusmirović, A. Marinković, V. Antić, V. Pavlović, Influence of different pore– forming agents on wollastonite microstructures and adsorption capacities, Ceram. Int., 43 (2017) 7461–7468.
  50. M.A. Mahmoud, Kinetics and thermodynamics of aluminum oxide nanopowder as adsorbent for Fe(III) from aqueous solution, Beni–Suef Univ. J. Appl. Sci., 4 (2015) 142–149.
  51. 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.
  52. M.M. Tehrania, S. Abbasizadehb, A. Alamdaric, 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. Wat. Treat., 62 (2017) 403–417.
  53. M. Karanac, M. Đolić, Đ. Veljović, V. Rajaković-Ognjanović, Z. Veličković, V. Pavićević, A. Marinković, The removal of Zn2+, Pb2+, and As(V) ions by lime activated fly ash and valorization of the exhausted adsorbent, Waste Manage., 78 (2018) 366–378.
  54. Y. Zhai, W. Zhou, W. Wei, J. Qu, J. Lei, Z. Su, G. Ma, Functional gigaporous polystyrene microspheres facilitating separation of poly(ethylene glycol)–protein conjugate, Anal. Chim. Acta, 712 (2012) 152–161.
  55. J.D. Rusmirović, N. Obradović, J. Perendija, A. Umićević, A. Kapidžić, B. Vlahović, V. Pavlović, A.D. Marinković, V.B. Pavlović, Controllable synthesis of Fe3O4-wollastonite adsorbents for efficient heavy metal ions/oxyanions removal, Environ. Sci. Pollut. Res. Int., 26 (2019) 12379–12398.
  56. D. Budimirović, Z.S. Veličković, V.R. Djokić, M. Milosavljević, J. Markovski, S. Lević, A.D. Marinković, Efficient As(V) removal by α–FeOOH and α–FeOOH/α–MnO2 embedded PEG–6–arm functionalized multiwall carbon nanotubes, Chem. Eng. Res. Des., 119 (2017) 75–86.
  57. 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.
  58. V. Hernández-Morales, R. Nava, Y.J. Acosta-Silva, S.A. Macías- Sánchez, J.J. Pérez-Bueno, B. Pawelec, Adsorption of lead(II) on SBA–15 mesoporous molecular sieve functionalized with–NH2 groups, Microporous Mesoporous Mater., 160 (2012) 133–142.
  59. W. Stumm, Aquatic Surface Chemistry: Chemical Processes at the Particle-Water Interface, John Wiley & Sons, 1987, p. 87.
  60. H. Hohl, W. Stumm, Interaction of Pb2+ with hydrous γ-Al2O3, J. Colloid Interface Sci., 55 (1976) 281–288.
  61. O. Takahashi, K. Saito, S. Yamamoto, N. Nishimura, Cadmium removal from simulated–ethylenediamine and–ammonia exciplexes. Comparison with experiments, Chem. Phys. Lett., 207 (1993) 379–383.
  62. G. Ma, A. Fischer, R. Nieuwendaal, K. Ramaswamy, S.E. Hayes, Cd(II)–ethylenediamine mono–and bimetallic complexes– Synthesis and characterization by 113Cd NMR spectroscopy and single crystal X-ray diffraction, Inorg. Chim. Acta, 358 (2005) 3165–3173.
  63. G.D. Vuković, A.D. Marinković, M. Čolić, M.Đ. Ristić, R. Aleksić, A.A. Perić-Grujić, P.S. Uskoković, Removal of cadmium from aqueous solutions by oxidized and ethylenediamine–functionalized multi–walled carbon nanotubes, Chem. Eng. J., 157 (2010) 238–248.
  64. S. Lagergren, About the theory of so-called adsorption of soluble substances, K. Sven. Vetenskapsakad., 24 (1898) 1–39.
  65. Z. Ren, G. Zhang, J. Paul Chen, Adsorptive removal of arsenic from water by an iron-zirconium binary oxide adsorbent, J. Colloid Interface Sci., 358 (2011) 230–237.
  66. S. Lazarević, V. Marjanović, I. Janković-Častvan, L. Živković, Dj. Janaćkovića, R. Petrović, Effective removal of Reactive Orange 16 dye from aqueous solution by aminefunctionalized sepiolites, Desal. Wat. Treat., 163 (2019) 376–384.
  67. D. Mohan, V.K. Gupta, S.K. Srivastava, S. Chander, Kinetics of mercury adsorption from wastewater using activated carbon derived from fertilizer waste, Colloid Surf., A, 177 (2001) 169–181.
  68. S. Glasston, K.J. Laidler, H. Eyring, The Theory of Rate Processes, McGraw-Hill, New York, 1941.
  69. M.J.D. Low, Kinetics of chemisorption of gases on solids, Chem. Rev., 60 (1960) 267–312.
  70. F.C. Wu, R.L.Tseng, R.S. Juang, Characteristics of Elovich equation used for the analysis of adsorption kinetics in dyechitosan systems, Chem. Eng. J., 150 (2009) 366–373.
  71. W.J. Weber, J.C. Moris, Kinetics of adsorption on carbon from solution, J. Sanit. Eng. Div., 89 (1963) 31–59.
  72. H. Dünwald, C. Wagner, Methodik der Messung von Diffusiongeschwindigkeiten bei Losungsvorgangen von Gasen in festen Phasen (Measurement of Diffusion Rate in the Process of Dissolving Gases in Solid Phases), Zeitschrift für Phys. Chemie B24, pp. 53–58, 1934.
  73. Q.I.U. Hui, L.V. Lu, B.C. Pan, Q.J. Zhang, W.M. Zhang, Q.X. Zhang, Critical review in adsorption kinetic models, Univ. Sci. A, 10 (2009) 716–724.
  74. B. Serin, R.T. Ellickson, Determination of diffusion coefficients, J. Chem. Phys., 9 (1941) 742.
  75. D.O. Cooney, Adsorption Design for Wastewater Treatment, Lewis Publishers, Boca Raton, 1999.
  76. J. Crank, Mathematics of Diffusion, Oxford at the Clarendon Press, London, UK, 1956.
  77. P. Kampalanonwat, P.Supaphol, Preparation and adsorption behavior of aminated electrospun polyacrylonitrile nanofiber mats for heavy metal ion removal, ACS Appl. Mater. Interfaces, 2 (2010) 3619–3627.
  78. M. Iqbal, N. Iqbal, I.A. Bhatti, N. Ahmad, M. Zahid, Response surface methodology application in optimization of cadmium adsorption by shoe waste: a good option of waste mitigation by waste, Ecol. Eng., 88 (2016) 265–275.
  79. M.A. Ahmed, S.T. Bishay, R. Ramadan, Water detoxification using gamma and alfa alumina nanoparticles prepared by micro emulsion route, Nano. Technol. Nano. Sci. Ind. J., 9 (2015) 064–074.
  80. S. Mahdavi, M. Jalali, A. Afkhami, Heavy metals removal from aqueous solutions by Al2O3 nanoparticles modified with natural and chemical modifiers, Clean. Technol. Environ. Policy, 17 (2015) 85–102.
  81. A. Heidari, H. Younesi, Z. Mehrabanb, Removal of Ni(II), Cd(II), and Pb(II) from a ternary aqueous solution by amino functionalized mesoporous and nano mesoporous silica, Chem. Eng. J., 153 (2009) 70–79.