References

  1. C.G. Lee, P.J.J. Alvarez, H.G. Kim, S. Jeong, S. Lee, K.B. Lee, S.H. Lee, J.W. Choi, Phosphorous recovery from sewage sludge using calcium silicate hydrates, Chemosphere, 193 (2018) 1087–1093.
  2. J.-H. Kim, J.-A. Park, J.-K. Kang, S.-B. Kim, C.-G. Lee, S.-H. Lee, J.-W. Choi, Phosphate sorption to quintinite in aqueous solutions: kinetic, thermodynamic and equilibrium analyses, Environ. Eng. Res., 20 (2015) 73–78.
  3. K. Kang, C.-G. Lee, J.-W. Choi, S.-G. Hong, S.-J. Park, Application of thermally treated crushed concrete granules for the removal of phosphate: a cheap adsorbent with high adsorption capacity, Water Air Soil Pollut., 228 (2016) 8–16.
  4. M.-J. Kim, J.-H. Lee, C.-G. Lee, S.-J. Park, Thermal treatment of attapulgite for phosphate removal: a cheap and natural adsorbent with high adsorption capacity, Desal. Wat. Treat., 114 (2018) 174–184.
  5. I.A. Kumar, N. Viswanathan, Development of multivalent metal ions imprinted chitosan biocomposites for phosphate sorption, Int. J. Biol. Macromol., 104 (2017) 1539–1547.
  6. S.-b. Liu, X.-f. Tan, Y.-g. Liu, Y.-l. Gu, G.-m. Zeng, X.-j. Hu, H. Wang, L. Zhou, L.-h. Jiang, B.-b. Zhao, Production of biochars from Ca impregnated ramie biomass (Boehmeria nivea (L.) Gaud.) and their phosphate removal potential, RSC Adv., 6 (2016) 5871–5880.
  7. G. Tondi, V. Fierro, A. Pizzi, A. Celzard, Tannin-based carbon foams, Carbon, 47 (2009) 1480–1492.
  8. M. Emmel, C.G. Aneziris, Development of novel carbon bonded filter compositions for steel melt filtration, Ceram. Int., 38 (2012) 5165–5173.
  9. G. Amaral-Labat, E. Gourdon, V. Fierro, A. Pizzi, A. Celzard, Acoustic properties of cellular vitreous carbon foams, Carbon, 58 (2013) 76–86.
  10. C.G. Lee, J.W. Jeon, M.J. Hwang, K.H. Ahn, C. Park, J.W. Choi, S.H. Lee, Lead and copper removal from aqueous solutions using carbon foam derived from phenol resin, Chemosphere, 130 (2015) 59–65.
  11. C.G. Lee, M.K. Song, J.C. Ryu, C. Park, J.W. Choi, S.H. Lee, Application of carbon foam for heavy metal removal from industrial plating wastewater and toxicity evaluation of the adsorbent, Chemosphere, 153 (2016) 1–9.
  12. C.G. Lee, S. Lee, J.A. Park, C. Park, S.J. Lee, S.B. Kim, B. An, S.T. Yun, S.H. Lee, J.W. Choi, Removal of copper, nickel and chromium mixtures from metal plating wastewater by adsorption with modified carbon foam, Chemosphere, 166 (2017) 203–211.
  13. D.D. Do, Adsorption Analysis: Equilibria and Kinetics, Imperial College Press, London, 1998.
  14. S.S. Gupta, K.G. Bhattacharyya, Kinetics of adsorption of metal ions on inorganic materials: a review, Adv. Colloid Interface Sci., 162 (2011) 39–58.
  15. K.Y. Foo, B.H. Hameed, Insights into the modeling of adsorption isotherm systems, Chem. Eng. J., 156 (2010) 2–10.
  16. R. Han, J. Zhang, P. Han, Y. Wang, Z. Zhao, M. Tang, Study of equilibrium, kinetic and thermodynamic parameters about methylene blue adsorption onto natural zeolite, Chem. Eng. J., 145 (2009) 496–504.
  17. C.-G. Lee, J.-H. Kim, J.-K. Kang, S.-B. Kim, S.-J. Park, S.-H. Lee, J.-W. Choi, Comparative analysis of fixed-bed sorption models using phosphate breakthrough curves in slag filter media, Desal. Wat. Treat., 55 (2014) 1795–1805.
  18. T. Khan, M.R.U. Mustafa, M.H. Isa, T.S.B.A. Manan, Y.-C. Ho, J.-W. Lim, N.Z. Yusof, Artificial neural network (ANN) for modelling adsorption of lead (Pb (II)) from aqueous solution, Water Air Soil Pollut., 228 (2017) 426.
  19. M. Selvanathan, K.T. Yann, C.H. Chung, A. Selvarajoo, S.K. Arumugasamy, V. Sethu, Adsorption of copper(II) ion from aqueous solution using biochar derived from Rambutan (Nepheliumlappaceum) peel: feedforward neural network modelling study, Water Air Soil Pollut., 228 (2017) 299.
  20. J. Ye, X. Cong, P. Zhang, G. Zeng, E. Hoffmann, Y. Wu, H. Zhang, W. Fang, Operational parameter impact and back propagation artificial neural network modeling for phosphate adsorption onto acid-activated neutralized red mud, J. Mol. Liq., 216 (2016) 35–41.
  21. R.M. Aghav, S. Kumar, S.N. Mukherjee, Artificial neural network modeling in competitive adsorption of phenol and resorcinol from water environment using some carbonaceous adsorbents, J. Hazard. Mater., 188 (2011) 67–77.
  22. R. Li, J.J. Wang, B. Zhou, M.K. Awasthi, A. Ali, Z. Zhang, L.A. Gaston, A.H. Lahori, A. Mahar, Enhancing phosphate adsorption by Mg/Al layered double hydroxide functionalized biochar with different Mg/Al ratios, Sci. Total Environ., 559 (2016) 121–129.
  23. W. Huang, J. Chen, F. He, J. Tang, D. Li, Y. Zhu, Y. Zhang, Effective phosphate adsorption by Zr/Al-pillared montmorillonite: insight into equilibrium, kinetics and thermodynamics, Appl. Clay Sci., 104 (2015) 252–260.
  24. W. Xiong, J. Tong, Z. Yang, G. Zeng, Y. Zhou, D. Wang, P. Song, R. Xu, C. Zhang, M. Cheng, Adsorption of phosphate from aqueous solution using iron-zirconium modified activated carbon nanofiber: performance and mechanism, J. Colloid Interface Sci., 493 (2017) 17–23.
  25. J.A. Marshall, B.J. Morton, R. Muhlack, D. Chittleborough, C.W. Kwong, Recovery of phosphate from calcium-containing aqueous solution resulting from biochar-induced calcium phosphate precipitation, J. Cleaner Prod., 165 (2017) 27–35.
  26. S. Shahabuddin, C. Tashakori, M.A. Kamboh, Z.S. Korrani, R. Saidur, H.R. Nodeh, M.E. Bidhendi, Kinetic and equilibrium adsorption of lead from water using magnetic metforminsubstituted SBA-15, Environ. Sci. Water Res. Technol., 4 (2018) 549–558.
  27. C.A. Almeida, N.A. Debacher, A.J. Downs, L. Cottet, C.A. Mello, Removal of methylene blue from colored effluents by adsorption on montmorillonite clay, J. Colloid Interface Sci., 332 (2009) 46–53.
  28. M. Dogan, H. Abak, M. Alkan, Adsorption of methylene blue onto hazelnut shell: kinetics, mechanism and activation parameters, J. Hazard. Mater., 164 (2009) 172–181.
  29. M.A. Al-Ghouti, M.A. Khraisheh, M.N. Ahmad, S. Allen, Adsorption behaviour of methylene blue onto Jordanian diatomite: a kinetic study, J. Hazard. Mater., 165 (2009) 589–598.
  30. H. Yin, X. Yan, X. Gu, Evaluation of thermally-modified calcium-rich attapulgite as a low-cost substrate for rapid phosphorus removal in constructed wetlands, Water Res., 115 (2017) 329–338.
  31. S. Lagergren, Zur Theorie der sogenannten Absorption gelöster Stoffe, P.A. Norstedt & söner, 1898.
  32. Y.-S. Ho, G. McKay, Sorption of dye from aqueous solution by peat, Chem. Eng. J., 70 (1998) 115–124.
  33. J. Zeldowitsch, Über den mechanismus der katalytischen oxydation von CO an MnO2, Acta Physicochim, URSS, 1 (1934) 364–449.
  34. Y.S. Ho, Review of second-order models for adsorption systems, J. Hazard. Mater., 136 (2006) 681–689.
  35. H. Freundlich, Over the adsorption in solution, J. Phys. Chem., 57 (1906) 1100–1107.
  36. I. Langmuir, The adsorption of gases on plane surfaces of glass, mica and platinum, J. Am. Chem. Soc., 40 (1918) 1361–1403.
  37. O. Redlich, D.L. Peterson, A useful adsorption isotherm, J. Phys. Chem., 63 (1959) 1024–1024.
  38. Q. Liu, H. Guo, Y. Shan, Adsorption of fluoride on synthetic siderite from aqueous solution, J. Fluorine Chem., 131 (2010) 635–641.
  39. S.-Y. Yoon, C.-G. Lee, J.-A. Park, J.-H. Kim, S.-B. Kim, S.-H. Lee, J.-W. Choi, Kinetic, equilibrium and thermodynamic studies for phosphate adsorption to magnetic iron oxide nanoparticles, Chem. Eng. J., 236 (2014) 341–347.
  40. L. Zhang, S. Hong, J. He, F. Gan, Y.-S. Ho, Adsorption characteristic studies of phosphorus onto laterite, Desal. Wat. Treat., 25 (2012) 98–105.
  41. M. Hermassi, C. Valderrama, N. Moreno, O. Font, X. Querol, N. Batis, J.L. Cortina, Powdered Ca-activated zeolite for phosphate removal from treated waste-water, J. Chem. Technol. Biotechnol., 91 (2016) 1962–1971.
  42. A. Debnath, K. Deb, K.K. Chattopadhyay, B. Saha, Methyl orange adsorption onto simple chemical route synthesized crystalline α-Fe2O3 nanoparticles: kinetic, equilibrium isotherm, and neural network modeling, Desal. Wat. Treat., 57 (2015) 13549–13560.
  43. G.D. Garson, Interpreting neural-network connection weights, AI Expert, 6 (1991) 46–51.