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Adsorption

Characterisation and adsorption properties of oxalate-loaded hematite composite for Cd(II) and Pb(II) adsorption: Equilibrium models, thermodynamic and kinetic studies

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Pages 2122-2137 | Received 10 Sep 2015, Accepted 21 Jun 2016, Published online: 18 Aug 2016

References

  • Djomgoue, P.; Siewe, M.; Djoufac, E.; Kenfack, P.; Njopwouo, D. (2012) Surface modification of Cameroonian magnetite rich clay with Eriochrome Black T. Application for adsorption of nickel in aqueous solution. Applied Surface Science, 258: 7470–7479.
  • Tan, G.; Xiao, D. (2009) Adsorption of cadmium ion from aqueous solution by ground wheat stems. Journal of Hazardous Materials, 164: 1359–1363.
  • Mukherjee, S. (2012) Applied Mineralogy: Applications in Industry and Environment. Springer Science & Business Media, Capital Publishing Company, Printed in India.
  • Fu, F.; Wang, Q. (2011) Removal of heavy metal ions from wastewaters: a review. Journal of Environmental Management, 92: 407–418.
  • Wang, X.S.; Zhu, L.; Lu, H.J. (2011) Surface chemical properties and adsorption of Cu (II) on nanoscale magnetite in aqueous solutions. Desalination, 276: 154–160.
  • Wingenfelder, U.; Nowack, B.; Furrer, G.; Schulin, R. (2005) Adsorption of Pb and Cd by amine-modified zeolite. Water Research, 39: 3287–3297.
  • Hamidpour, M.; Afyuni, M.; Kalbasi, M.; Khoshgoftarmanes, A.H.; Inglezakis, V.J. (2010) Mobility and plant-availability of Cd(II) and Pb(II) adsorbed on zeolite and bentonite. Applied Clay Science, 48: 342–348.
  • Hamidpour, M.; Kalbasi, M.; Afyuni, M.; Shariatmadari, H.; Holm, P.E.; Hansen, H.C.B. (2010) Sorption hysteresis of Cd(II) and Pb(II) on natural zeolite and bentonite. Journal of Hazardous Materials, 181: 686–691.
  • Kozar, S.; Bilinski, H.; Branica, M.; Schwuger, M. (1992) Adsorption of Cd(II) and Pb(II) on bentonite under estuarine and seawater conditions. Science of the Total Environment, 121:203–216.
  • Bereket, G.; Arog, A.Z.; Özel, M.Z. (1997) Removal of Pb(II), Cd(II), Cu (II), and Zn (II) from aqueous solutions by adsorption on bentonite. Journal of Colloid and Interface Science, 187:338–343.
  • Unuabonah, E.; Adebowale, K.; Olu-Owolabi, B.; Yang, L. (2008) Comparison of sorption of Pb2+ and Cd2+ on kaolinite clay and polyvinyl alcohol-modified kaolinite clay. Adsorption, 14: 791–803.
  • Puls, R.W.; Powell, R.M.; Clark, D.; Eldred, C.J. (1991) Effects of pH, solid/solution ratio, ionic strength, and organic acids on Pb and Cd sorption on kaolinite. Water Air Soil Pollution, 57: 423–430.
  • Sari, A.; Tuzen, M.; Citak, D.; Soylak, M. (2007) Equilibrium, kinetic and thermodynamic studies of adsorption of Pb(II) from aqueous solution onto Turkish kaolinite clay. Journal of Hazardous Materials, 149: 283–291.
  • Mamindy-Pajany, Y.; Hurel, C.; Marmier, N.; Roméo, M. (2011) Arsenic (V) adsorption from aqueous solution onto goethite, hematite, magnetite and zero-valent iron: effects of pH, concentration and reversibility. Desalination, 281: 93–99.
  • Zach-Maor, A.; Semiat, R.; Shemer, H. (2011) Removal of heavy metals by immobilized magnetite nano-particles. Desalination and Water Treatment, 31:64–70.
  • Cundy, A.B.; Hopkinson, L.; Whitby, R.L. (2008) Use of iron-based technologies in contaminated land and groundwater remediation: A review. Science of the Total Environment, 400: 42–51.
  • Meyer, K. (1980) Pelletization of Iron Ores. ed; Springer: Verlag. Berlin, Heidelberg.
  • Musić, S.; Ristic, M. (1992) Adsorption of zinc (II) on hydrous iron oxides. Journal of Radioanalytical and Nuclear Chemistry, 1992;162:351–362.
  • Shipley, H.J.; Engates, K.E.; Grover, V.A. (2013) Removal of Pb(II), Cd(II), Cu (II), and Zn (II) by hematite nanoparticles: Effect of sorbent concentration, pH, temperature, and exhaustion. Environmental Science and Pollution Research, 20: 1727–1736.
  • Tanwar, K.S.; Petitto, S.C.; Ghose, S.K.; Eng, P.J.; Trainor, T.P. (2009) Fe (II) adsorption on hematite (0001). Geochimica et Cosmochimica Acta, 73: 4346–4365.
  • Mohapatra, M.; Rout, K.; Mohapatra, B.; Anand, S. (2009) Sorption behavior of Pb(II) and Cd(II) on iron ore slime and characterization of metal ion loaded sorbent. Journal of Hazardous Materials, 166: 1506–1513.
  • Rzepa, G.; Bajda, T.; Ratajczak, T. (2009) Utilization of bog iron ores as sorbents of heavy metals. Journal of Hazardous Materials, 162: 1007–1013.
  • Li, W.; Zhang, S.; Jiang, W.; Shan, X.-q. (2006) Effect of phosphate on the adsorption of Cu and Cd on natural hematite. Chemosphere, 63: 1235–1241.
  • Panda, L.; Das, B.; Rao, D. S. (2011) Studies on removal of lead ions from aqueous solutions using iron ore slimes as adsorbent. Korean Journal of Chemical Engineering, 28: 2024–2032.
  • Davis, A.P.; Bhatnagar, V. (1995) Adsorption of cadmium and humic acid onto hematite. Chemosphere, 30:243–256.
  • Singh, D.; Rupainwar, D.; Prasad, G.; Jayaprakas, K. (1998) Studies on the Cd(II) removal from water by adsorption. Journal of Hazardous Materials, 60: 29–40.
  • Zhao, D.; Chen, C.; Sheng, G.; Wang, X. (2011) Effect of environmental conditions on the retention behaviour of Pb(II) by hematite. Journal of Chemical Technology and Biotechnology, 86: 1099–1106.
  • Jeon, B.-H.; Dempsey, B.A.; Burgos, W.D.; Royer, R.A. (2003) Sorption kinetics of Fe (II), Zn (II), Co (II), Ni (II), Cd(II), and Fe (II)/Me (II) onto hematite. Water Research, 37: 4135–4142.
  • Prasad, P.; Prasad, K.S.; Chaitanya, V.K.; Babu, E.; Sreedhar, B.; Murthy, S.R. (2006) In situ FTIR study on the dehydration of natural goethite. Journal of Asian Earth Sciences, 27: 503–511.
  • Özcan, A.S.; Gök, Ö.; Özcan, A. (2009) Adsorption of lead (II) ions onto 8-hydroxy quinoline-immobilized bentonite. Journal of Hazardous Materials, 161:499–509.
  • Wang, S.; Dong, Y.; He, M.; Chen, L.; Yu, X. (2009) Characterization of GMZ bentonite and its application in the adsorption of Pb(II) from aqueous solutions. Applied Clay Science, 43: 164–171.
  • Liu, W.; Liu, W.; Wang, X.; Wei, D.; Wang, B. (2016) Utilization of novel surfactant N-dodecyl-isopropanolamine as collector for efficient separation of quartz from hematite. Separation and Purification Technology, 162: 188–194.
  • Zhang, C.; Yu, Z.; Zeng, G.; Huang, B.; Dong, H.; Huang, J.; et al. (2016) Phase transformation of crystalline iron oxides and their adsorption abilities for Pb and Cd. Chemical Engineering Journal, 284:247–259.
  • Chingombe, P.; Saha, B.; and Wakeman, R. (2006) Sorption of atrazine on conventional and surface modified activated carbons. Journal of Colloid and Interface Science, 302: 408–416.
  • Foo, K.; Hameed, B. (2010) Insights into the modeling of adsorption isotherm systems. Chemical Engineering Journal, 156: 2–10.
  • Crini, G.; Peindy, H.N.; Gimbert, F.; Robert, C. (2007) Removal of CI Basic Green 4 (Malachite Green) from aqueous solutions by adsorption using cyclodextrin-based adsorbent: Kinetic and equilibrium studies. Separation and Purification Technology, 53: 97–110.
  • Ofomaja, A.E.; Ho, Y.-S. (2007) Equilibrium sorption of anionic dye from aqueous solution by palm kernel fibre as sorbent. Dyes and Pigments, 74: 60–66.
  • Özacar, M.; Şengil, İ.A. (2004) Equilibrium data and process design for adsorption of disperse dyes onto alunite. Environmental Geology, 45: 762–768.
  • Mall, I.D.; Srivastava, V.C.; Agarwal, N.K.; Mishra, I.M. (2005) Removal of congo red from aqueous solution by bagasse fly ash and activated carbon: kinetic study and equilibrium isotherm analyses. Chemosphere, 61: 492–501.
  • Hobson, J.P. (1969) Physical adsorption isotherms extending from ultrahigh vacuum to vapor pressure. The Journal of Physical Chemistry, 73: 2720–2727.
  • Doğan, M.; Alkan, M.; Demirbaş, Ö.; Özdemir, Y.; Özmetin, C. (2006) Adsorption kinetics of maxilon blue GRL onto sepiolite from aqueous solutions. Chemical Engineering Journal, 124: 89–101.
  • Khan, A.; Ataullah, R.; Al-Haddad, A. (1997) Equilibrium adsorption studies of some aromatic pollutants from dilute aqueous solutions on activated carbon at different temperatures. Journal of Colloid and Interface Science, 194: 154–165.
  • Koble, R.A.; Corrigan, T.E. (1952) Adsorption isotherms for pure hydrocarbons. Industrial & Engineering Chemistry, 44: 383–387.
  • Günay, A.; Arslankaya, E.; Tosun, I. (2007) Lead removal from aqueous solution by natural and pretreated clinoptilolite: adsorption equilibrium and kinetics. Journal of Hazardous Materials, 146: 362–371.
  • Toth, J. (1971) State equations of the solid-gas interface layers. Acta Chimica (Academiae Scientiarum) Hungaricae, 69: 311–328.
  • Bulut, E.; Özacar, M.; Şengil, İ.A. (2008) Adsorption of malachite green onto bentonite: equilibrium and kinetic studies and process design. Microporous and Mesoporous Materials, 115: 234–246.
  • Özacar, M. (2006) Contact time optimization of two-stage batch adsorber design using second-order kinetic model for the adsorption of phosphate onto alunite. Journal of Hazardous Materials, 137: 218–225.
  • Oh, S.; Kwak, M.Y.; Shin, W.S. (2009) Competitive sorption of lead and cadmium onto sediments. Chemical Engineering Journal, 152: 376–388.
  • Mohapatra, M.; Mohapatra, L.; Hariprasad, D.; Anand, S.; Mishra, B. (2012) Nano-structured Mg-doped Fe2O3–ferrihydrite powder–a new adsorbent for cation removal from aqueous solutions. Environmental Technology, 33: 1717–1726.
  • Xu, P.; Zeng, G.M.; Huang, D.L.; Lai, C.; Zhao, M.H.; Wei, Z. (2012) Adsorption of Pb(II) by iron oxide nanoparticles immobilized Phanerochaete chrysosporium: equilibrium, kinetic, thermodynamic and mechanisms analysis. Chemical Engineering Journal, 203: 423–431.
  • Ho, Y.-S. (2003) Removal of copper ions from aqueous solution by tree fern. Water Research, 37: 2323–2330.
  • Smith, J.M.; Van Ness, H.C. (1987) Introduction to Chemical Engineering Thermodynamics. New York City, NY: McGraw-Hill.

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