References

  1. M. Varol, B. Şen, Assessment of nutrient and heavy metal contamination in surface water and sediments of the upper Tigris River, Turkey, Catena, 92 (2012) 1–10.
  2. M.S. Islam, M.K. Ahmed, M. Raknuzzaman, M. Habibullah-Al-Mamun, M.K. Islam, Heavy metal pollution in surface water and sediment: a preliminary assessment of an urban river in a developing country, Ecol. Indic., 48 (2015) 282–291.
  3. W. Ji, Z. Chen, D. Li, W. Ni, Identifying the criteria of cadmium pollution in paddy soils based on a field survey, Energy Procedia, 16 (2012) 27–31.
  4. T.S. Nawrot, J.A. Staessen, H.A. Roels, E. Munters, A. Cuypers, T. Richart, A. Ruttens, K. Smeets, H. Clijsters, J. Vangronsveld, Cadmium exposure in the population: from health risks to strategies of prevention, BioMetals, 23 (2010) 769–782.
  5. L.M. Plum, L. Rink, H. Haase, The essential toxin: impact of zinc on human health, Int. J. Environ. Res. Public Health, 7 (2010) 1342–1365.
  6. S. Hokkanen, E. Repo, M. Sillanpää, Removal of heavy metals from aqueous solutions by succinic anhydride modified mercerized nanocellulose, Chem. Eng. J., 223 (2013) 40–47.
  7. X. Xu, X. Cao, L. Zhao, H. Wang, H. Yu, B. Gao, Removal of Cu, Zn, and Cd from aqueous solutions by the dairy manurederived biochar, Environ. Sci. Pollut. Res., 20 (2013) 358–368.
  8. M. Li, M. Li, C. Feng, Q. Zeng, Preparation and characterization of multi-carboxyl-functionalized silica gel for removal of Cu (II), Cd (II), Ni (II) and Zn (II) from aqueous solution, Appl. Surf. Sci., 314 (2014) 1063–1069.
  9. H. Wang, X. Yuan, Y. Wu, H. Huang, G. Zeng, Y. Liu, X. Wang, N. Lin, Y. Qi, Adsorption characteristics and behaviors of graphene oxide for Zn (II) removal from aqueous solution, Appl. Surf. Sci., 279 (2013) 432–440.
  10. K. Yu, J. Xu, X. Jiang, C. Liu, W. McCall, J. Lu, Stabilization of heavy metals in soil using two organo-bentonites, Chemosphere, 184 (2017) 884–891.
  11. X. Zhang, H. Wang, L. He, K. Lu, A. Sarmah, J. Li, N.S. Bolan, J. Pei, H. Huang, Using biochar for remediation of soils contaminated with heavy metals and organic pollutants, Environ. Sci. Pollut. Res., 20 (2013) 8472–8483.
  12. X. Li, L. Dai, C. Zhang, G. Zeng, Y. Liu, C. Zhou, W. Xu, Y. Wu, X. Tang, W. Liu, Enhanced biological stabilization of heavy metals in sediment using immobilized sulfate reducing bacteria beads with inner cohesive nutrient, J. Hazard. Mater., 324 (2017) 340–347.
  13. J. Wan, C. Zhang, G. Zeng, D. Huang, L. Hu, C. Huang, H. Wu, L. Wang, Synthesis and evaluation of a new class of stabilized nano-chlorapatite for Pb immobilization in sediment, J. Hazard. Mater., 320 (2016) 278–288.
  14. J. Čejka, G. Centi, J. Perez-Pariente, W.J. Roth, Zeolite-based materials for novel catalytic applications: opportunities, perspectives and open problems, Catal. Today, 179 (2012) 2–15.
  15. B.M. Weckhuysen, J. Yu, Recent advances in zeolite chemistry and catalysis, Chem. Soc. Rev., 44 (2015) 7022–7024.
  16. C. Baerlocher, W.M. Meier, D.H. Olson, Introduction and Explanatory Notes, in: C. Baerlocher, W.M. Meier, D.H. Olson (Eds.) Atlas of Zeolite Framework Types, Elsevier, Amsterdam, 2001, pp. 3–18.
  17. E. Zanin, J. Scapinello, M. de Oliveira, C.L. Rambo, F. Franscescon, L. Freitas, J.M.M. de Mello, M.A. Fiori, J.V. Oliveira, J. Dal Magro, Adsorption of heavy metals from wastewater graphic industry using clinoptilolite zeolite as adsorbent, Process Saf. Environ. Prot., 105 (2017) 194–200.
  18. P.G. Blakeman, E.M. Burkholder, H.-Y. Chen, J.E. Collier, J.M. Fedeyko, H. Jobson, R.R. Rajaram, The role of pore size on the thermal stability of zeolite supported Cu SCR catalysts, Catal. Today, 231 (2014) 56–63.
  19. L. Lin, Z. Lei, L. Wang, X. Liu, Y. Zhang, C. Wan, D.-J. Lee, J.H. Tay, Adsorption mechanisms of high-levels of ammonium onto natural and NaCl-modified zeolites, Sep. Purif. Technol., 103 (2013) 15–20.
  20. T.C. Nguyen, P. Loganathan, T.V. Nguyen, S. Vigneswaran, J. Kandasamy, R. Naidu, Simultaneous adsorption of Cd, Cr, Cu, Pb, and Zn by an iron-coated Australian zeolite in batch and fixed-bed column studies, Chem. Eng. J., 270 (2015) 393–404.
  21. V. Hernández-Montoya, M.A. Pérez-Cruz, D.I. Mendoza-Castillo, M. Moreno-Virgen, A. Bonilla-Petriciolet, Competitive adsorption of dyes and heavy metals on zeolitic structures, J. Environ. Manage., 116 (2013) 213–221.
  22. J. Wen, Y. Yi, G. Zeng, Effects of modified zeolite on the removal and stabilization of heavy metals in contaminated lake sediment using BCR sequential extraction, J. Environ. Manage., 178 (2016) 63–69.
  23. H. Demiral, C. Güngör, Adsorption of copper(II) from aqueous solutions on activated carbon prepared from grape bagasse, J. Cleaner Prod., 124 (2016) 103–113.
  24. X. Liu, R. Wang, Effective removal of hydrogen sulfide using 4A molecular sieve zeolite synthesized from attapulgite, J. Hazard. Mater., 326 (2017) 157–164.
  25. D. Angin, Utilization of activated carbon produced from fruit juice industry solid waste for the adsorption of Yellow 18 from aqueous solutions, Bioresour. Technol., 168 (2014) 259–266.
  26. M. Matouq, N. Jildeh, M. Qtaishat, M. Hindiyeh, M.Q. Al Syouf, The adsorption kinetics and modeling for heavy metals removal from wastewater by Moringa pods, J. Environ. Chem. Eng., 3 (2015) 775–784.
  27. K.Y. Foo, B.H. Hameed, Insights into the modeling of adsorption isotherm systems, Chem. Eng. J., 156 (2010) 2–10.
  28. C. Cao, C. Liang, Y. Yin, L. Du, Thermal activation of serpentine for adsorption of cadmium, J. Hazard. Mater., 329 (2017) 222–229.
  29. F. Bouhamed, Z. Elouear, J. Bouzid, Adsorptive removal of copper (II) from aqueous solutions on activated carbon prepared from Tunisian date stones: equilibrium, kinetics and thermodynamics, J. Taiwan Inst. Chem. Eng., 43 (2012) 741–749.
  30. H. Fathollahzadeh, F. Kaczala, A. Bhatnagar, W. Hogland, Speciation of metals in contaminated sediments from Oskarshamn Harbor, Oskarshamn, Sweden, Environ. Sci. Pollut. Res., 21 (2014) 2455–2464.
  31. T. Motsi, N. Rowson, M. Simmons, Adsorption of heavy metals from acid mine drainage by natural zeolite, Int. J. Miner. Process., 92 (2009) 42–48.
  32. R.I. Yousef, B. El-Eswed, H. Ala’a, Adsorption characteristics of natural zeolites as solid adsorbents for phenol removal from aqueous solutions: kinetics, mechanism, and thermodynamics studies, Chem. Eng. J., 171 (2011) 1143–1149.
  33. L. Cao, Z. Li, S. Xiang, Z. Huang, R. Ruan, Y. Liu, Preparation and characteristics of bentonite–zeolite adsorbent and its application in swine wastewater, Bioresour. Technol., 284 (2019) 448–455.
  34. Z. Wang, K. Tan, J. Cai, S. Hou, Y. Wang, P. Jiang, M. Liang, Silica oxide encapsulated natural zeolite for high efficiency removal of low concentration heavy metals in water, Colloids Surf. Physicochem. Eng. Aspects, 561 (2019) 388–394.
  35. H.A. El-Azim, F.A. Mourad, Removal of heavy metals Cd (II), Fe (III) and Ni (II), from aqueous solutions by natural (clinoptilolite) zeolites and application to industrial wastewater, Asian J. Environ. Ecol., 7 (2018) 1–13.
  36. H. Javadian, F. Ghorbani, H.-a. Tayebi, S.H. Asl, Study of the adsorption of Cd (II) from aqueous solution using zeolite-based geopolymer, synthesized from coal fly ash; kinetic, isotherm and thermodynamic studies, Arabian J. Chem., 8 (2015) 837–849.
  37. M. Abatal, M.T. Olguin, Y. Abdellaoui, A. El Bouari, Sorption of Cd (II), Ni (II) and Zn (II) on natural, sodium-, and acidmodified clinoptilolite-rich tuff, Environ. Prot. Eng., 44 (2018) 41–59.
  38. A. Cincotti, N. Lai, R. Orrù, G. Cao, Sardinian natural clinoptilolites for heavy metals and ammonium removal: experimental and modeling, Chem. Eng. J., 84 (2001) 275–282.
  39. M. Panayotova, B. Velikov, Kinetics of heavy metal ions removal by use of natural zeolite, J. Environ. Sci. Health, Part A: Environ. Sci. Eng., 37 (2002) 139–147.
  40. M. Shavandi, Z. Haddadian, M.H.S. Ismail, N. Abdullah, Z. Abidin, Removal of Fe (III), Mn (II) and Zn (II) from palm oil mill effluent (POME) by natural zeolite, J. Taiwan Inst. Chem. Eng., 43 (2012) 750–759.
  41. V. Vimonses, S. Lei, B. Jin, C.W. Chow, C. Saint, Kinetic study and equilibrium isotherm analysis of Congo Red adsorption by clay materials, Chem. Eng. J., 148 (2009) 354–364.
  42. T.E. Köse, H. Demiral, N. Öztürk, Adsorption of boron from aqueous solutions using activated carbon prepared from olive bagasse, Desal. Wat. Treat., 29 (2011) 110–118.
  43. M.T. Yagub, T.K. Sen, S. Afroze, H.M. Ang, Dye and its removal from aqueous solution by adsorption: a review, Adv. Colloid Interface Sci., 209 (2014) 172–184.
  44. X. Ma, H. Zuo, M. Tian, L. Zhang, J. Meng, X. Zhou, N. Min, X. Chang, Y. Liu, Assessment of heavy metals contamination in sediments from three adjacent regions of the Yellow River using metal chemical fractions and multivariate analysis techniques, Chemosphere, 144 (2016) 264–272.
  45. M. Saleem, J. Iqbal, M.H. Shah, Geochemical speciation, anthropogenic contamination, risk assessment and source identification of selected metals in freshwater sediments—a case study from Mangla Lake, Pakistan, Environ. Nanotechnol. Monit. Manage., 4 (2015) 27–36.
  46. S. Çoruh, The removal of zinc ions by natural and conditioned clinoptilolites, Desalination, 225 (2008) 41–57.
  47. L. Li, J. Dong, T.M. Nenoff, R. Lee, Ion Separation by Reverse Osmosis on MFI Zeolite Membranes, 2004.
  48. W. Xu, L.Y. Li, J.R. Grace, G. Hébrard, Acid rock drainage treatment by clinoptilolite with slurry bubble column: Sustainable zinc removal with regeneration of clinoptilolite, Appl. Clay Sci., 80–81 (2013) 31–37.
  49. L. Mihaly-Cozmuta, A. Mihaly-Cozmuta, A. Peter, C. Nicula, H. Tutu, D. Silipas, E. Indrea, Adsorption of heavy metal cations by Na-clinoptilolite: Equilibrium and selectivity studies, J. Environ. Manage., 137 (2014) 69–80.
  50. M. Visa, Synthesis and characterization of new zeolite materials obtained from fly ash for heavy metals removal in advanced wastewater treatment, Powder Technol., 294 (2016) 338–347.
  51. A. Ismail, A. Kawde, O. Muraza, M. Sanhoob, M.A. Aziz, A. Al-Betar, Modified lanthanum–zeolite for sensitive electrochemical detection of heavy metal ions, Arabian J. Sci. Eng., 44 (2019) 217–226.
  52. Y. Huang, X. Zeng, L. Guo, J. Lan, L. Zhang, D. Cao, Heavy metal ion removal of wastewater by zeolite-imidazolate frameworks, Sep. Purif. Technol., 194 (2018) 462–469.
  53. S. Waghmare, T. Arfin, S. Rayalu, D. Lataye, S. Dubey, S. Tiwari, Adsorption behavior of modified zeolite as novel adsorbents for fluoride removal from drinking water: surface phenomena, kinetics and thermodynamics studies II, Int. J. Sci. Eng. Technol. Res., 4 (2015) 4114–4124.
  54. A.A. Alswat, M.B. Ahmad, T.A. Saleh, Zeolite modified with copper oxide and iron oxide for lead and arsenic adsorption from aqueous solutions, J. Water Supply: Res. Technol.--AQUA, 65 (2016) 465–479.
  55. V. Tomar, S. Prasad, D. Kumar, Adsorptive removal of fluoride from water samples using Zr–Mn composite material, Microchem. J., 111 (2013) 116–124.
  56. L. Aljerf, High-efficiency extraction of bromocresol purple dye and heavy metals as chromium from industrial effluent by adsorption onto a modified surface of zeolite: kinetics and equilibrium study, J. Environ. Manage., 225 (2018) 120–132.
  57. S. Shrestha, G. Son, S.H. Lee, T.G. Lee, Isotherm and thermodynamic studies of Zn (II) adsorption on lignite and coconut shell-based activated carbon fiber, Chemosphere, 92 (2013) 1053–1061.
  58. T.M. Alslaibi, I. Abustan, M.A. Ahmad, A. Abu Foul, Comparative studies on the olive stone activated carbon adsorption of Zn2+, Ni2+, and Cd2+ from synthetic wastewater, Desal. Wat. Treat., 54 (2015) 166–177.
  59. C. Chen, H. Liu, T. Chen, D. Chen, R.L. Frost, An insight into the removal of Pb (II), Cu (II), Co (II), Cd (II), Zn (II), Ag (I), Hg (I), Cr (VI) by Na (I)-montmorillonite and Ca (II)-montmorillonite, Appl. Clay Sci., 118 (2015) 239–247.
  60. A.B. Đukić, K.R. Kumrić, N.S. Vukelić, M.S. Dimitrijević, Z.D. Baščarević, S.V. Kurko, L.L. Matović, Simultaneous removal of Pb2+, Cu2+, Zn2+ and Cd2+ from highly acidic solutions using mechanochemically synthesized montmorillonite–kaolinite/TiO2 composite, Appl. Clay Sci., 103 (2015) 20–27.
  61. J. Wen, G. Zeng, Chemical and biological assessment of Cd-polluted sediment for land use: the effect of stabilization using chitosan-coated zeolite, J. Environ. Manage., 212 (2018) 46–53.
  62. Y. Xu, Stabilization of heavy metal-contaminated sediment with a chelator and humic acid mixture, Water Air Soil Pollut., 228 (2017) 20.