Review
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Year 2023, , 847 - 860, 30.08.2023
https://doi.org/10.18596/jotcsa.1263041

Abstract

References

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  • 2. Motsa, M. M.; Thwala, J. M.; Msagati, T. A. M.; Mamba, B. B. The potential of melt-mixed polypropylene–zeolite blends in the removal of heavy metals from aqueous media. Physics and Chemistry of the Earth, Parts A/B/C. 2011, 36 (14), 1178-1188. Available from: <DOI>.
  • 3. El-Azim, H.; Mourad, F. Removal of Heavy Metals Cd (II), Fe (III) and Ni (II), from Aqueous Solutions by Natural (Clinoptilolite) Zeolites and Application to Industrial Wastewater. Asian Journal of Environment & Ecology 2018, 7, 1-13. Available from: <DOI>.
  • 4. Aghazadeh, S.; Safarzadeh, E.; Gharabaghi, M.; Irannajad, M. Modification of natural zeolite for Cu removal from waste waters. Desalination and Water Treatment 2016, 57, 1-8. Available from: <DOI>.
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  • 7. Kong, F.; Zhang, Y.; Wang, H.; Tang, J.; Li, Y.; Wang, S. Removal of Cr(VI) from wastewater by artificial zeolite spheres loaded with nano Fe–Al bimetallic oxide in constructed wetland. Chemosphere. 2020, 257, 127224. Available from: <DOI>.
  • 8. Türkmen, M. Removal of Heavy Metals From Wastewaters by Use of Natural Zeolites. In Fresenius Environmental Bulletin. , 2002; Department of Environmental Engineering, Dokuz Eylül University.: Vol. 13, pp 574-580.
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  • 10. Yuna, Z. Review of the Natural, Modified, and Synthetic Zeolites for Heavy Metals Removal from Wastewater. Environmental Engineering Science. 2016, 33 (7), 443-454. Available from: <DOI>.
  • 11. Li, Y.; Bai, P.; Yan, Y.; Yan, W.; Shi, W.; Xu, R. Removal of Zn2+, Pb2+, Cd2+, and Cu2+ from aqueous solution by synthetic clinoptilolite. Microporous and Mesoporous Materials. 2019, 273, 203-211. Available from: <DOI>.
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  • 14. Habeebullah, T.; Munir, S.; Awad, A.; Morsy, E.; Seroji, A.; Mohammed, A. The Interaction between Air Quality and Meteorological Factors in an Arid Environment of Makkah, Saudi Arabia. International Journal of Environmental Science and Development. 2014, 6, 576-580. Available from: <DOI>.
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  • 41. Llanes-Monter, M.; Olguín, M.; Solache, M. Lead sorption by a Mexican, clinoptilolite-rich tuff. Environmental science and pollution research international. 2007, 14, 397-403. Available from: <DOI>.
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Differences in Heavy Metals Adsorption on Natural, Modified, and Synthetic Zeolites-A Review

Year 2023, , 847 - 860, 30.08.2023
https://doi.org/10.18596/jotcsa.1263041

Abstract

This paper presents a comprehensive study of the differences in heavy metal adsorption on natural, modified, and synthetic zeolites. Heavy metal treatment and adsorption are critical issues in today's modern world, and despite advancements in technology, they remain a global challenge. Industrial effluents are a major source of heavy metal pollutants, which have a severe impact on human health and the environment. Therefore, removing heavy metals from contaminated water and wastewater is a necessity. Adsorption is the most commonly used method for removing heavy metals from the environment due to its cost-effectiveness, design, and performance. Among various adsorbents, zeolites are currently considered a suitable method due to their cost-effectiveness, simplicity, and the varying ion-exchange capacity of natural zeolites worldwide for cations such as ammonium and heavy metal ions. The findings of this research could provide useful information for developing efficient and cost-effective methods for the removal of heavy metals from water and wastewater, thus addressing a critical global issue. The outcomes of this research contribute to promoting a green and healthy environment.

References

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  • 2. Motsa, M. M.; Thwala, J. M.; Msagati, T. A. M.; Mamba, B. B. The potential of melt-mixed polypropylene–zeolite blends in the removal of heavy metals from aqueous media. Physics and Chemistry of the Earth, Parts A/B/C. 2011, 36 (14), 1178-1188. Available from: <DOI>.
  • 3. El-Azim, H.; Mourad, F. Removal of Heavy Metals Cd (II), Fe (III) and Ni (II), from Aqueous Solutions by Natural (Clinoptilolite) Zeolites and Application to Industrial Wastewater. Asian Journal of Environment & Ecology 2018, 7, 1-13. Available from: <DOI>.
  • 4. Aghazadeh, S.; Safarzadeh, E.; Gharabaghi, M.; Irannajad, M. Modification of natural zeolite for Cu removal from waste waters. Desalination and Water Treatment 2016, 57, 1-8. Available from: <DOI>.
  • 5. World Health, O. Lead in drinking-water: background document for development of WHO guidelines for drinking-water quality; WHO/SDE/WSH/03.04/09; World Health Organization., Geneva, 2003. Available from: <URL>.
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  • 7. Kong, F.; Zhang, Y.; Wang, H.; Tang, J.; Li, Y.; Wang, S. Removal of Cr(VI) from wastewater by artificial zeolite spheres loaded with nano Fe–Al bimetallic oxide in constructed wetland. Chemosphere. 2020, 257, 127224. Available from: <DOI>.
  • 8. Türkmen, M. Removal of Heavy Metals From Wastewaters by Use of Natural Zeolites. In Fresenius Environmental Bulletin. , 2002; Department of Environmental Engineering, Dokuz Eylül University.: Vol. 13, pp 574-580.
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  • 10. Yuna, Z. Review of the Natural, Modified, and Synthetic Zeolites for Heavy Metals Removal from Wastewater. Environmental Engineering Science. 2016, 33 (7), 443-454. Available from: <DOI>.
  • 11. Li, Y.; Bai, P.; Yan, Y.; Yan, W.; Shi, W.; Xu, R. Removal of Zn2+, Pb2+, Cd2+, and Cu2+ from aqueous solution by synthetic clinoptilolite. Microporous and Mesoporous Materials. 2019, 273, 203-211. Available from: <DOI>.
  • 12. Bessa, R. A.; França, A. M. M.; Pereira, A. L. S.; Alexandre, N. P.; Pérez-Page, M.; Holmes, S. M.; Nascimento, R. F.; Rosa, M. F.; Anderson, M. W.; Loiola, A. R. Hierarchical zeolite based on multiporous zeolite A and bacterial cellulose: An efficient adsorbent of Pb2+. Microporous and Mesoporous Materials. 2021, 312, 110752. Available from: <DOI>.
  • 13. Mirjana Golomeova, A. Z., Krsto Blazev, Boris Krstev, Blagoj Golomeov. Removal of Heavy Metals from Aqueous Solution using Clinoptilolite and Stilbite. INTERNATIONAL JOURNAL OF ENGINEERING RESEARCH & TECHNOLOGY (IJERT) . 2014, 03 (11), 1029-1035. Available from: <DOI>.
  • 14. Habeebullah, T.; Munir, S.; Awad, A.; Morsy, E.; Seroji, A.; Mohammed, A. The Interaction between Air Quality and Meteorological Factors in an Arid Environment of Makkah, Saudi Arabia. International Journal of Environmental Science and Development. 2014, 6, 576-580. Available from: <DOI>.
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  • 18. Apreutesei, R.; Catrinescu, C.; Teodosiu, C. Surfactant-Modified Natural Zeolites for Environmental Applications in Water Purification. Environmental engineering and management journal. 2008, 7, 149-161. Available from: <DOI>.
  • 19. Bandura, L.; Panek, R.; Madej, J.; Franus, W. Synthesis of zeolite-carbon composites using high-carbon fly ash and their adsorption abilities towards petroleum substances. Fuel. 2021, 283, 119173. Available from: <DOI>.
  • 20. Zorbay, F.; Arslan, S. Zeolitler ve Kullanım Alanları. Karaelmas Science and Engineering Journal. 2012, 2, 63-68. Available from: <DOI>.
  • 21. Li, Y.; Liang, G.; Chang, L.; Zi, C.; Zhang, Y.; Peng, Z.; Zhao, W. Conversion of biomass ash to different types of zeolites: a review. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. 2019, 43, 1-14. DOI: 10.1080/15567036.2019.1640316. Polatoglu, I. Chemical behaviour of clinoptilolite rich natural zeolite in aqueous medium. the Graduate School of Engineering and Sciences of izmir Institute of Technology., Izmir, 2005. Available from: <URL>.
  • 22. Zeng, S.; Wang, R.; Zhang, Z.; Qiu, S. Solventless green synthesis of sodalite zeolite using diatomite as silica source by a microwave heating technique. Inorganic Chemistry Communications. 2016, 70, 168-171. Available from: <DOI>.
  • 23. Wu, Q.; Meng, X.; Gao, X.; Xiao, F.-S. Solvent-Free Synthesis of Zeolites: Mechanism and Utility. Accounts of chemical research. 2018, 51 (6), 1396-1403. Available from: <DOI>. 24. Ghasemi, Z.; Sourinejad, I.; Kazemian, H.; Rohani, S. Application of zeolites in aquaculture industry: a review. Reviews in Aquaculture. 2018, 10 (1), 75-95. Available from: <DOI>.
  • 25. Davis, M. E. Zeolites from a Materials Chemistry Perspective. Chemistry of Materials 2014, 26 (1), 239-245. Available from: <DOI>.
  • 26. Tao, Y.; Kanoh, H.; Abrams, L.; Kaneko, K. Mesopore-Modified Zeolites:  Preparation, Characterization, and Applications. Chemical Reviews. 2006, 106 (3), 896-910. Available from: <DOI>.
  • 27. Ramos-Guivar, J. A.; Taipe, K.; Schettino, M. A., Jr.; Silva, E.; Morales Torres, M. A.; Passamani, E. C.; Litterst, F. J. Improved Removal Capacity and Equilibrium Time of Maghemite Nanoparticles Growth in Zeolite Type 5A for Pb(II) Adsorption. Nanomaterials (Basel). 2020, 10 (9). DOI: 10.3390/nano10091668 From NLM. Ülkü, S. CHEMICAL BEHAVIOUR OF CLINOPTILOLITE RICH NATURAL ZEOLITE IN AQUEOUS MEDIUM. In Izmir Institute of Technology administrators., 2005.
  • 28. Krol, M. M. Natural vs. Synthetic Zeolites. 2020.
  • 29. Wang, S.; Peng, Y. Natural zeolites as effective adsorbents in water and wastewater treatment. Chemical Engineering Journal. 2010, 156 (1), 11-24. Available from: <DOI>.
  • 30. Passaglia, E.; Sheppard, R. A. The Crystal Chemistry of Zeolites. Reviews in Mineralogy and Geochemistry. 2001, 45 (1), 69-116. Available from: <DOI>. (acccessed 6/14/2023).
  • 31. Batur, J.; Duan, Z.; Jiang, M.; Li, R.; Xie, Y.; Yu, X.-F.; Li, J.-R. Molecular Modification of Zeolites with Cold Atmospheric-Pressure Plasma Jet: A Green and Facile Strategy. Chemistry of Materials. 2023, 35 (10), 3867-3879. Available from: <DOI>.
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  • 35. Montes Luna, A. d. J.; Castruita de León, G.; García Rodríguez, S. P.; Fuentes López, N. C.; Pérez Camacho, O.; Perera Mercado, Y. A. Na+/Ca2+ aqueous ion exchange in natural clinoptilolite zeolite for polymer-zeolite composite membranes production and their CH4/CO2/N2 separation performance. Journal of Natural Gas Science and Engineering. 2018, 54, 47-53. Available from: <DOI>.
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  • 39. Cincotti, A.; Mameli, A.; Locci, A. M.; Orrú, R.; Cao, G. Heavy Metals Uptake by Sardinian Natural Zeolites: Experiment and Modeling. Industrial & Engineering Chemistry Research. 2006, 45, 1074-1084.
  • 40. Gedik, K.; Imamoglu, I. Affinity of Clinoptilolite‐based Zeolites towards Removal of Cd from Aqueous Solutions. Separation Science and Technology - SEPAR SCI TECHNOL 2008, 43, 1191-1207. Available from: <DOI>.
  • 41. Llanes-Monter, M.; Olguín, M.; Solache, M. Lead sorption by a Mexican, clinoptilolite-rich tuff. Environmental science and pollution research international. 2007, 14, 397-403. Available from: <DOI>.
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There are 57 citations in total.

Details

Primary Language English
Subjects Transition Metal Chemistry, Chemical Engineering
Journal Section REVIEW ARTICLES
Authors

Sebghatullah Mudaber

Jenaidullah Batur 0000-0002-0460-9548

Publication Date August 30, 2023
Submission Date March 10, 2023
Acceptance Date June 19, 2023
Published in Issue Year 2023

Cite

Vancouver Mudaber S, Batur J. Differences in Heavy Metals Adsorption on Natural, Modified, and Synthetic Zeolites-A Review. JOTCSA. 2023;10(3):847-60.