References

  1. J. Ray, S. Jana, T. Tripathy, Synthesis of dipolar grafted hydroxyethyl cellulose and its application for the removal of phosphate ion from aqueous medium by adsorption, Int. J. Biol. Macromol., 109 (2018) 492–506.
  2. K. Karageorgiou, M. Paschalis, G. Anastassakis, Removal of phosphate species from solution by adsorption onto calcite used as natural adsorbent, J. Hazard. Mater., 139 (2007) 447– 452.
  3. X. Yuan, W. Xia, J. An, J. Yin, X. Zhou, W. Yang, Kinetic and thermodynamic studies on the phosphate adsorption removal by dolomite mineral, J. Chem-NY., 2015 (2015) 1–8.
  4. H. Yang, Q. Zhou, W. Luo, C. Yan, C. Zhou, The preparation of a cross-link cerium (III)-loaded alginate bead adsorbent for the removal of phosphate from wastewater, Desal. Water Treat., 57(39) (2016) 18354–18365.
  5. M. Parhamfar, A.B. Dalfard, M. Khaleghi, M. Hassanshahian, Isolation of phosphatase-producing phosphate solubilizing bacteria from Loriya spring: Investigation of phosphate solubilizing in the presence of different parameters, Biol. J. Microorganism, 3 (2014) 75–88.
  6. W. Gu, X. Li, M. Xing, W. Fang, D. Wu, Removal of phosphate from water by amine-functionalized copper ferrite chelated with La (III), Sci. Total Environ., 619 (2018) 42–48.
  7. M. Lürling, E. Mackay, K. Reitzel, B.M. Spears, Editorial–a critical perspective on geo-engineering for eutrophication management in lakes, Water Res., 97 (2016) 1–10.
  8. J. Goscianska, M. Ptaszkowska-Koniarz, M. Frankowski, M. Franus, R. Panek, W. Franus, Removal of phosphate from water by lanthanum-modified zeolites obtained from fly ash, J. Colloid Interface Sci., 513 (2018) 72–81.
  9. Z. Wang, D. Shen, F. Shen, T. Li, Phosphate adsorption on lanthanum loaded biochar, Chemosphere, 150 (2016) 1–7.
  10. K. Kim, K. Kim, S. Asaoka, I.C. Lee, D.S. Kim, S. Hayakawa, Quantitative measurement on removal mechanisms of phosphate by class–F Fly Ash, Int. j. Coal Prep. Util., 2018 (2018) 1–12.
  11. X. Ren, C. Du, L. Zhang, Y. Zhuang, M. Xu, Removal of phosphate in aqueous solutions by the aluminum salt slag derived from the scrap aluminum melting process, Desal. Water Treat., 57 (2016) 11291–11299.
  12. K.W. Jung, T.U. Jeong, J.W. Choi, K.H. Ahn, S.H. Lee, Adsorption of phosphate from aqueous solution using electrochemically modified biochar calcium-alginate beads: Batch and fixed-bed column performance, Bioresour. Technol., 244 (2017) 23–32.
  13. H. Mahadevan, V.V. Dev, K.A. Krishnan, A. Abraham, O. Ershana, Optimization of retention of phosphate species onto a novel bentonite–alum adsorbent system, Environ. Technol. Innovation, 9 (2018) 1–15.
  14. S. Hokkanen, E. Repo, L.J. Westholm, S. Lou, T. Sainio, M. Sillanpää, Adsorption of Ni2+, Cd2+, PO43− and NO3 from aqueous solutions by nanostructured micro fibrillated cellulose modified with carbonated hydroxyapatite, Chem. Eng. J., 252 (2014) 64–74.
  15. L. Fang, B. Wu, J.K. Chan, I.M. Lo, Lanthanum oxide nanorods for enhanced phosphate removal from sewage: A response surface methodology study, Chemosphere, 192 (2018) 209–216.
  16. S. Mor, K. Chhoden, P. Negi, K. Ravindra, Utilization of nano-alumina and activated charcoal for phosphate removal from wastewater, Environ. Nanotechnol. Monit. Manage., 7 (2017) 15–23.
  17. Z. Guo, J. Li, Z. Guo, Q. Guo, B. Zhu, Phosphorus removal from aqueous solution in parent and aluminum-modified eggshells: thermodynamics and kinetics, adsorption mechanism, and diffusion process, Environ. Sci. Pollut. Res., 24 (2017) 14525–14536.
  18. J.K. Kim, S.B, Kim, S.H. Lee, J.W Choi, Laboratory and pilotscale field experiments for application of iron oxide nanoparticle-loaded chitosan composites to phosphate removal from natural water, Environ. Technol., 39 (2018) 770–779.
  19. T.H. Chen, J.Z. Wang, J. Wang, J.J. Xie, C.Z. Zhu, X.M. Zhan, Phosphorus removal from aqueous solutions containing low concentration of phosphate using pyrite calcinate sorbent, Int. J. Environ. Sci. Technol., 12 (2015) 885–892.
  20. D.K. Harijan, V. Chandra, Akaganeite nanorods decorated graphene oxide sheets for removal and recovery of aqueous phosphate, J. Water Process Eng., 19 (2017) 120–125.
  21. Y. Yang, J. Wang, X. Qian, Y. Shan, H. Zhang, Aminopropyl-functionalized mesoporous carbon (APTMS-CMK-3) as effective phosphate adsorbent, Appl. Surf. Sci., 427 (2018) 206–214.
  22. G. Asgari, B. Roshani, G. Ghanizadeh, The investigation of kinetic and isotherm of fluoride adsorption onto functionalize pumice stone, J. Hazard. Mater., 217 (2012) 123–132.
  23. Y. Pukcothanung, T. Siritanon, K. Rangsriwatananon, The efficiency of zeolite Y and surfactant-modified zeolite Y for removal of 2, 4-dichlorophenoxyacetic acid and 1, 1’-dimethyl-4, 4’-bipyridinium ion, Micropor. Mesopor. Mater., 258 (2018) 131–140.
  24. M. Saltan, F.S. Fındık, Stabilization of sub base layer materials with waste pumice in flexible pavement, Build. Environ., 43 (2008) 415–421.
  25. M. Nakhaeipour, F.A.H. Shojaee, F. Najarian, M. Safinezhad, H. Irvani, Detrmininig the efficiency of zsm5-zeolite impregnated with nanoparticles of titanium dioxid in the photo catalytic removal of styrene vapors, J. Occup. Hyg. Eng., 3 (2017) 61–67.
  26. P.J. Reeve, H.J. Fallowfield, The toxicity of cationic surfactant HDTMA-Br, desorbed from surfactant modified zeolite, towards faecal indicator and environmental microorganisms, J. Hazard. Mater., 339 (2017) 208–215.
  27. M.R. Samarghandi, M. Tarlaniazar, R. Mehranpoor, M. Ahmadian, Survey the efficiency of iron-coated pumic in fluoride removal from aqueous solution, J. Environ. Health Eng., 2 (2014) 128–140.
  28. R.S. Bowman, Applications of surfactant-modified zeolites to environmental remediation, Micropor. Mesopor. Mater., 61 (2003) 43–56.
  29. G. Asgari, G. Ghanizadeh, A.S. Mohamadi, Adsorption of humic acid from aqueous solutions onto modified pumice with hexadecyl trimethyl ammonium bromide, J. Babol Univ. Med. Sci., 14 (2011) 14–22.
  30. F. Akbal, Sorption of phenol and 4-chlorophenol onto pumice treated with cationic surfactant, J. Environ. Manage., 74 (2005) 239–244.
  31. M.J. Khodayar, F. Namdar, S. Hojati, A. Landi, Z.N. Khorasgani, S. Alamolhoda. Removal of ametryn from aqueous solutions with zeolite nanoparticles optimized using the Box-Behnken design, Jundishapur J. Nat. Pharm. Prod., 11 (2016) 1–9.
  32. L.C. Wang, X.J. Ni, Y.H. Cao, G.Q. Cao, Adsorption behavior of bisphenol A on CTAB-modified graphite, Appl. Surf. Sci., 428 (2018) 165–170.
  33. A. Shil, S. Hussain, D. Bhattacharjee, Surfactant concentration dependent metachromasy of an anionic cyanine dye in adsorbed and deposited Langmuir films, Chem. Phys. Lett., 676 (2017) 99–107.
  34. U.O. Aigbe, R. Das, W.H. Ho, V. Srinivasu, A. Maity, A novel method for removal of Cr(VI) using polypyrrole magnetic nanocomposite in the presence of unsteady magnetic fields, Sep. Purif. Technol., 194 (2018) 377–387.
  35. I. Langmuir, The adsorption of gases on plane surfaces of glass, mica and platinum, J. Am. Chem. Soc., 40 (1918) 1361– 1403.
  36. A. Karami, K. Karimyan, R. Davoodi, M. Karimaei, K. Sharafie, S. Rahimi, T. Khosravi, M. Miri, H. Sharafi, A. Azari, Application of response surface methodology for statistical analysis, modeling, and optimization of malachite green removal from aqueous solutions by manganese-modified pumice adsorbent, Desal. Water Treat., 89 (2017) 150–161.
  37. H. Yadaei, M.H. Beyki, F. Shemirani, S. Nouroozi, Ferrofluid mediated chitosan@ mesoporous carbon nanohybrid for green adsorption/preconcentration of toxic Cd (II): Modeling, kinetic and isotherm study, React. Funct. Polym., 122 (2018) 85–97.
  38. A.Q. Selim, E.A. Mohamed, M. Mobarak, A.M. Zayed, M.K. Seliem, S. Komarneni, Cr (VI) uptake by a composite of processed diatomite with MCM-41: isotherm, kinetic and thermodynamic studies, Micropor. Mesopor. Mater., 260 (2018) 84–92.
  39. H.M.F. Freundlich, over the adsorption in solution, J. Phys. Chem., 57 (1906) 385–471.
  40. M. Ligaray, C.M. Futalan, M.D. De Luna, M.W. Wan, Removal of chemical oxygen demand from thin-film transistor liquid-crystal display wastewater using chitosan-coated bentonite: Isotherm, kinetics and optimization studies, J. Clean. Prod., 175 (2018) 145–154.
  41. S. Mahdavi, D. Akhzari, The removal of phosphate from aqueous solutions using two nano-structures: copper oxide and carbon tubes, Clean Technol. Environ. Pol., 18 (2016) 817–827.
  42. A. Iriel, S.P. Bruneel, N. Schenone, A.F. Cirelli, The removal of fluoride from aqueous solution by a lateritic soil adsorption: Kinetic and equilibrium studies, Ecotoxicol. Environ. Saf., 149 (2018) 166–172.
  43. R.R. Kalantary, E. Dehghanifard, A. Mohseni-Bandpi, L. Rezaei, A. Esrafili, B. Kakavandi, A. Azari, Nitrate adsorption by synthetic activated carbon magnetic nanoparticles: kinetics, isotherms and thermodynamic studies, Desal. Water Treat., 57 (2016) 16445–16455.
  44. A. Azari, M. Gholami, Z. Torkshavand, A. Yari, E. Ahmadi, B. Kakavandi, Evaluation of basic violet 16 adsorption from aqueous solution by magnetic zero valent iron-activated carbon nanocomposite using response surface method: isotherm and kinetic studies, J. Mazandaran Univ. Med. Sci., 24 (2015) 333–347.
  45. L. Vafajoo, R. Cheraghi, R. Dabbagh, G. McKay, Removal of cobalt (II) ions from aqueous solutions utilizing the pre-treated 2-Hypnea Valentiae algae: Equilibrium, thermodynamic, and dynamic studies, Chem. Eng. J., 331 (2018) 39–47.
  46. M. Tuzen, A. Sarı, T.A. Saleh, Response surface optimization, kinetic and thermodynamic studies for effective removal of rhodamine B by magnetic AC/CeO2 nanocomposite, J. Environ. Manage., 206 (2018) 170–177.
  47. M.R. Samarghandi, M. Zarrabi, M.N. Sepehr, A. Amrane, G.H. Safari, S. Bashiri, Application of acidic treated pumice as an adsorbent for the removal of azo dye from aqueous solutions: kinetic, equilibrium and thermodynamic studies, Iran, J. Environ. Health Sci. Eng., 9 (2012) 1–10.
  48. M.H. Dehghani, M. Faraji, A. Mohammadi, H. Kamani, Optimization of fluoride adsorption onto natural and modified pumice using response surface methodology: Isotherm, kinetic and thermodynamic studies, Korean J. Chem. Eng., 34 (2017) 454–462.
  49. M. Zamparas, A. Gianni, P. Stathi, Y. Deligiannakis, I. Zacharias, Removal of phosphate from natural waters using innovative modified bentonites, Appl. Clay Sci., 62 (2012) 101–106.
  50. N. Kawasaki, F. Ogata, H. Tominaga, Selective adsorption behavior of phosphate onto aluminum hydroxide gel, J. Hazard. Mater., 181 (2010) 574–579.
  51. P. Castaldi, M. Silvetti, G. Garau, S. Deiana, Influence of the pH on the accumulation of phosphate by red mud (a bauxite ore processing waste), J. Hazard. Mater., 182 (2010) 266–272.
  52. M. Naushad, G. Sharma, A. Kumar, S. Sharma, A.A. Ghfar, A. Bhatnagar, F.J. Stadler, M.R. Khan, Efficient removal of toxic phosphate anions from aqueous environment using pectin based quaternary amino anion exchanger, Int. J. Biol. Macromol., 106 (2018) 1–10.
  53. J. Wang, Y. Liu, P. Hu, R. Huang, Adsorption of phosphate from aqueous solution by Zr (IV)-cross linked quaternized chitosan/bentonite composite, Environ. Prog. Sustain. Ener., 37 (2018) 267–275.
  54. A. Attour, M. Touati, M. Tlili, M.B. Amor, F. Lapicque, J.P. Leclerc, Influence of operating parameters on phosphate removal from water by electrocoagulation using aluminum electrodes, Sep. Purif. Technol., 123 (2014) 124–129.
  55. M. Rashid, N.T. Price, M.Á.G. Pinilla, K.E. O’Shea, Effective removal of phosphate from aqueous solution using humic acid coated magnetite nanoparticles, Water Res., 123 (2017) 353–360.
  56. W. Huang, S. Wang, Z. Zhu, L. Li, X. Yao, V. Rudolph, F. Haghseresht, Phosphate removal from wastewater using red mud, J. Hazard. Mater., 158 (2008) 35–42.
  57. K.G. Scheckel, D.L. Sparks, Temperature effects on nickel sorption kinetics at the mineral–water interface, Soil Sci. Soc. Am. J., 65 (2001) 719–728.
  58. A.S. Özcan, A. Özcan, Adsorption of acid dyes from aqueous solutions onto acid-activated bentonite, J. Colloid Interface Sci., 276 (2004) 39–46.
  59. E. Unuabonah, K. Adebowale, B. Olu-Owolabi, L. Yang, L. Kong, Adsorption of Pb (II) and Cd (II) from aqueous solutions onto sodium tetraborate-modified kaolinite clay: equilibrium and thermodynamic studies, Hydrometallurgy, 93 (2008) 1–9.
  60. L. Gan, Z. Lu, D. Cao, Z. Chen., Effects of cetyltrimethylammonium bromide on the morphology of green synthesized Fe3O4 nanoparticles used to remove phosphate, Mater. Sci. Eng., C., 82 (2018) 41–45.
  61. S. Karaca, A. Gürses, M. Ejder, M. Açıkyıldız, Adsorptive removal of phosphate from aqueous solutions using raw and calcinated dolomite, J. Hazard. Mater., 128 (2006) 273–279.
  62. Y. He, H. Lin, Y. Dong, L. Wang, Preferable adsorption of phosphate using lanthanum-incorporated porous zeolite: Characteristics and mechanism, Appl. Surf. Sci., 426 (2017) 995–1004.
  63. J. Zolgharnein, K. Dalvand, M. Rastgordani, P. Zolgharnein, Adsorptive removal of phosphate using nano cobalt hydroxide as a sorbent from aqueous solution; multivariate optimization and adsorption characterization, J. Alloys Compd., 725 (2017) 1006–1017.
  64. Y. Yao, B. Gao, M. Inyang, A.R. Zimmerman, X. Cao, P. Pullammanappallil, L. Yang, Removal of phosphate from aqueous solution by biochar derived from anaerobically digested sugar beet tailings, J. Hazard. Mater., 190 (2011) 501–507.
  65. S. Wang, L. Kong, J. Long, M. Su, Z. Diao, X. Chang, D. Chen, G. Song, K. Shih, Adsorption of phosphorus by calcium-flour biochar: Isotherm, kinetic and transformation studies, Chemosphere, 195 (2018) 666–672.
  66. S. Tian, P. Jiang, P. Ning, Y. Su, Enhanced adsorption removal of phosphate from water by mixed lanthanum/aluminum pillared montmorillonite, Chem. Eng. J., 151 (2009) 141–148.
  67. D. Rajendra, Phosphate and nitrate removal from agricultural runoff by chitosan-graphite composite, Res. Dev. Material Sci., 6 (2018) 1–11.
  68. C. Tu, S. Wang, W. Qiu, R. Xie, B. Hu, G. Qu, P. Ning, Phosphorus removal from aqueous solution by adsorption onto La-modified clinoptilolite, MATEC Web. Conf., 67 (2016) 1–14.
  69. Q. Yang, X. Wang, W. Luo, J. Sun, Q. Xu, F. Chen, J. Zhao, S. Wang, F. Yao, D. Wang, X. Li, G. Zeng, Effectiveness and mechanisms of phosphate adsorption on iron-modified biochars derived from waste activated sludge, Bioresour. Technol., 247 (2018) 537–544.
  70. P. Kumar, S. Sudha, S. Chand, V.C. Srivastava, Phosphate removal from aqueous solution using coir-pith activated carbon, Sep. Sci. Technol., 45 (2010) 1463–1470.
  71. J. Wang, L. Wu, J. Li, D. Tang, G. Zhang, Simultaneous and efficient removal of fluoride and phosphate by Fe-La composite: Adsorption kinetics and mechanism, J. Alloys Compd., 753 (2018) 422–432.
  72. R.B. Garcia-Reyes, J.R. Rangel-Mendez, Adsorption kinetics of chromium (III) ions on agro-waste materials, Bioresour. Technol., 101 (2010) 8099–8108.