Submitted:
13 March 2025
Posted:
14 March 2025
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Abstract
Contamination of water is currently one of the alarming issues all around the planet. Water that is contaminated with manganese (Mn) could potentially give rise to functional and aesthetic complications. Removal of manganese is critical and often has substantial implications for the layout of treatment trains. Precipitation, ion exchange, depth filtration, oxidation, adsorption, biosorption, and biological methods are the traditional chemical, physical, and biological processes for removing Mn (II) from contaminated water. All these treatment processes have some advantages and disadvantages and are based on which the implementation of any process varies. In recent years, the use of biofiltration to eliminate manganese (Mn) from water has grown owing to the progress made in molecular techniques for studying microorganisms found in biological Mn elimination systems. This study aims to contribute to the existing research on Mn occurrence and highlight the historical and current removal strategies used in drinking water treatment. The main objective is to assist future researchers in developing more efficient technologies and clarify the subject matter.
Keywords:
Introduction
Treatment technıques for Manganese Removal
Oxidation ad Filtration
Oxidation
Filtration
Chemical Precipitation
Carbonate Precipitation
Hydroxide Precipitation
Sulfide Precipitation
Oxidation Precipitation
Ion Exchange
Electrochemical Treatment
Adsorption
Activated Carbon as Adsorbents
Agro/Plant-Derived Adsorbents
Natural Minerals, Modified Absorbents, and Industrial Wastes as Adsorbents
Polymer as Adsorbents
Biological Method
Phytoremediation
Membrane Filtration
Conclusion
Data Availability Statement
Conflicts of Interest
Use of AI for Writing Assistance
Ethics
References
- Pradyot. Patnaik, Handbook of inorganic chemicals. McGraw-Hill, 2003.
- P. Rumsby et al., “Speciation of manganese in drinking water,” Toxicol Lett, vol. 229, p. S120, Sep. 2014. [CrossRef]
- J. E. Tobiason, A. Bazilio, J. Goodwill, X. Mai, and C. Nguyen, “Manganese Removal from Drinking Water Sources,” Sep. 01, 2016, Springer. [CrossRef]
- B. Huang et al., “Study and health risk assessment of the occurrence of iron and manganese in groundwater at the terminal of the Xiangjiang River,” Environmental Science and Pollution Research, vol. 22, no. 24, pp. 19912–19921, Dec. 2015. [CrossRef]
- H. Yang, D. Li, H. Zeng, and J. Zhang, “Autotrophic nitrogen conversion process and microbial population distribution in biofilter that simultaneously removes Fe, Mn and ammonia from groundwater,” Int Biodeterior Biodegradation, vol. 135, pp. 53–61, Nov. 2018. [CrossRef]
- Q. Chen, G. Li, Z. Lu, Y. Su, B. Wu, and B. Shi, “Efficient Mn(II) removal by biological granular activated carbon filtration,” J Hazard Mater, p. 131877, Jun. 2023. [CrossRef]
- L. A. Dion et al., “MRI pallidal signal in children exposed to manganese in drinking water,” Neurotoxicology, vol. 53, pp. 124–131, Mar. 2016. [CrossRef]
- Y. Oulhote et al., “Neurobehavioral function in school-age children exposed to manganese in drinking water,” Environ Health Perspect, vol. 122, no. 12, pp. 1343–1350, 2015. [CrossRef]
- M. Ashraf Ali, K. Mahmuda Tasneem, and M. Ashraf Ali, “Assessment of Manganese Removal from Groundwater Using Adsorptive Filtration Media Assessing organisational capacity for sanitation planning and investment in three Bangladeshi cities View project RW13 Assessment of Manganese Removal from Groundwater Using Adsorptive Filtration Media,” 2010. [Online]. Available: https://www.researchgate.net/publication/338159737.
- World Health Organization., Guidelines for drinking-water quality. World Health Organization, 2011.
- J. Du, “Drinking Water Health Advisory for Manganese,” 2004. [Online]. Available: http://www.epa.gov/safewater.
- R. O. Fournier, “CHEMICAL GEOTHERMOMETERS AND MIXING MODELS FOR GEOTHERMAL SYSTEMS,” Pergamon Press, 1977.
- C. Belviso et al., “Removal of Mn from aqueous solution using fly ash and its hydrothermal synthetic zeolite,” J Environ Manage, vol. 137, pp. 16–22, May 2014. [CrossRef]
- N. Esfandiar, B. Nasernejad, and T. Ebadi, “Removal of Mn(II) from groundwater by sugarcane bagasse and activated carbon (a comparative study): Application of response surface methodology (RSM),” Journal of Industrial and Engineering Chemistry, vol. 20, no. 5, pp. 3726–3736, Sep. 2014. [CrossRef]
- D. S. Patil, S. M. Chavan, and J. U. K. Oubagaranadin, “A review of technologies for manganese removal from wastewaters,” Mar. 01, 2016, Elsevier Ltd. [CrossRef]
- D. Purkayastha, U. Mishra, and S. Biswas, “A comprehensive review on Cd(II) removal from aqueous solution,” 2014, Elsevier Ltd. [CrossRef]
- M. A. Barakat, “New trends in removing heavy metals from industrial wastewater,” Oct. 2011. [CrossRef]
- L. Chen, J. Zhang, and X. Zheng, “Coupling Technique for Deep Removal of Manganese and Iron from Potable Water,” Environ Eng Sci, vol. 33, no. 4, pp. 261–269, Apr. 2016. [CrossRef]
- P. Roccaro, C. Barone, G. Mancini, and F. G. A. Vagliasindi, “Removal of manganese from water supplies intended for human consumption: a case study,” Desalination, vol. 210, no. 1–3, pp. 205–214, Jun. 2007. [CrossRef]
- V. Menard and G. P. Demopoulos, “Gas transfer kinetics and redox potential considerations in oxidative precipitation of manganese from an industrial zinc sulphate solution with SO2/O2,” Hydrometallurgy, vol. 89, no. 3–4, pp. 357–368, Dec. 2007. [CrossRef]
- E. Lewis, “Review of metal sulphide precipitation,” Hydrometallurgy, vol. 104, no. 2, pp. 222–234, 2010. [CrossRef]
- P. Phatai, J. Wittayakun, W. H. Chen, C. M. Futalan, N. Grisdanurak, and C. C. Kan, “Removal of manganese(II) and iron(II) from synthetic groundwater using potassium permanganate,” Desalination Water Treat, vol. 52, no. 31–33, pp. 5942–5951, Sep. 2014. [CrossRef]
- M. M. R. Mondol, “MANGANESE REMOVAL FROM DRINKING WATER USING ROUGHING FILTRATION,” Tech. J. River Res. Inst, vol. 15, no. 1, pp. 31–37.
- H. A. Aziz and P. @ G. Smith, “TECHNICAL NOTE REMOVAL OF MANGANESE FROM WATER USING CRUSHED DOLOMITE FILTRATION TECHNIQUE,” 1996.
- M. Shafiquzzaman, “Removal of manganese from groundwater using a biological arsenic removal ceramic filter,” J Environ Chem Eng, vol. 5, no. 2, pp. 1618–1627, Apr. 2017. [CrossRef]
- A. Athirah, N. A. Saad, M. F. M. Akhir, and N. A. Zakaria, “Manganese removal in groundwater treatment using marble,” International Journal of Integrated Engineering, vol. 11, no. 2, pp. 053–060, 2019. [CrossRef]
- W. Feng, J. Wu, and J. Lu, “Long-term removal of manganese in geothermal water: column experiment and model simulation,” Environ Earth Sci, vol. 81, no. 16, Aug. 2022. [CrossRef]
- G. Tekerlekopoulou and D. V. Vayenas, “Ammonia, iron and manganese removal from potable water using trickling filters,” Desalination, vol. 210, no. 1–3, pp. 225–235, Jun. 2007. [CrossRef]
- G. Tekerlekopoulou, I. A. Vasiliadou, and D. V. Vayenas, “Biological manganese removal from potable water using trickling filters,” Biochem Eng J, vol. 38, no. 3, pp. 292–301, Mar. 2008. [CrossRef]
- Gouzinis, N. Kosmidis, D. V Vayenas, and G. Lyberatos, “REMOVAL OF Mn AND SIMULTANEOUS REMOVAL OF NH 3, Fe AND Mn FROM POTABLE WATER USING A TRICKLING FILTER.”.
- F. Corbera-Rubio et al., “Meta-omics profiling of full-scale groundwater rapid sand filters explains stratification of iron, ammonium and manganese removals,” Water Res, vol. 233, Apr. 2023. [CrossRef]
- S. Chaturvedi and P. N. Dave, “Removal of iron for safe drinking water,” Oct. 01, 2012. [CrossRef]
- Y. Li, Z. Xu, H. Ma, and A. S. Hursthouse, “Removal of Manganese(II) from acid mine wastewater: A review of the challenges and opportunities with special emphasis on mn-oxidizing bacteria and microalgae,” Dec. 01, 2019, MDPI AG. [CrossRef]
- E. Torres, A. Lozano, F. Macías, A. Gomez-Arias, J. Castillo, and C. Ayora, “Passive elimination of sulfate and metals from acid mine drainage using combined limestone and barium carbonate systems,” J Clean Prod, vol. 182, pp. 114–123, May 2018. [CrossRef]
- W. Zhang, C. Y. Cheng, and Y. Pranolo, “Investigation of methods for removal and recovery of manganese in hydrometallurgical processes,” Hydrometallurgy, vol. 101, no. 1–2, pp. 58–63, Feb. 2010. [CrossRef]
- M. J. Kearney and C. A. Parks, “Oxidation Of Iron And Manganese By Ozone,” Ozone Sci Eng, vol. 13, no. 6, pp. 675–695, Dec. 1991. [CrossRef]
- V. W. Hoyland, W. R. Knocke, J. O. Falkinham, A. Pruden, and G. Singh, “Effect of drinking water treatment process parameters on biological removal of manganese from surface water,” Water Res, vol. 66, pp. 31–39, Dec. 2014. [CrossRef]
- E. Z. Radzi, F. N. Ngimran, R. Hamdan, M. S. Wahab, M. Z. Sahdan, and A. Madun, “Study of Performance Aeration Rate Effects on Iron and Manganese Removal in Groundwater Using Gravitational Aeration Tower System (GATS),” in IOP Conference Series: Materials Science and Engineering, IOP Publishing Ltd, Sep. 2020. [CrossRef]
- Q. Zhang, S. Zhang, C. Lyu, X. Yang, W. Liu, and X. Su, “A cost-effective catalytically adsorbent for in situ remediation of manganese contaminated groundwater,” Water Sci Technol Water Supply, vol. 18, no. 2, pp. 504–514, Apr. 2018. [CrossRef]
- S. R. Taffarel and J. Rubio, “On the removal of Mn2+ ions by adsorption onto natural and activated Chilean zeolites,” Miner Eng, vol. 22, no. 4, pp. 336–343, Mar. 2009. [CrossRef]
- S. HAMEED, “Removal of Iron and Manganese from Ground Water by Different Techniques,” Journal of Research on the Lepidoptera, vol. 50, no. 4, pp. 458–468, Dec. 2019. [CrossRef]
- M. Ince, “Treatment of Manganese-Phosphate Coating Wastewater by Electrocoagulation,” Separation Science and Technology (Philadelphia), vol. 48, no. 3, pp. 515–522, Jan. 2013. [CrossRef]
- M. E. Goher, A. M. Hassan, I. A. Abdel-Moniem, A. H. Fahmy, M. H. Abdo, and S. M. El-sayed, “Removal of aluminum, iron and manganese ions from industrial wastes using granular activated carbon and Amberlite IR-120H,” Egypt J Aquat Res, vol. 41, no. 2, pp. 155–164, 2015. [CrossRef]
- E. Okoniewska, J. Lach, M. Kacprzak, and E. Neczaj, “The removal of manganese, iron and ammonium nitrogen on impregnated activated carbon,” Desalination, vol. 206, no. 1–3, pp. 251–258, Feb. 2007. [CrossRef]
- L. Wedasingha, A. Bandara, M. Wijesinghe, and L. Jayarathna, “ADSORPTION STUDIES ON MODIFIED GRAPHENE OXIDE QUANTUM DOTS FOR REMOVAL OF MANGANESE Zeolite Synthesis for Pollutant Remediation View project Monitoring municipal solid waste dumps in Sri Lanka for environmental contaminants View project.” [Online]. Available: https://www.researchgate.net/publication/36638969.
- E. Viglašová et al., “Engineered biochar as a tool for nitrogen pollutants removal: Preparation, characterization and sorption study,” Desalination Water Treat, vol. 191, pp. 318–331, Jul. 2020. [CrossRef]
- L. P. Lingamdinne et al., “Magnetic-watermelon rinds biochar for uranium-contaminated water treatment using an electromagnetic semi-batch column with removal mechanistic investigations,” Chemosphere, vol. 286, Jan. 2022. [CrossRef]
- R. A. Usman et al., “Biochar production from date palm waste: Charring temperature induced changes in composition and surface chemistry,” J Anal Appl Pyrolysis, vol. 115, pp. 392–400, Sep. 2015. [CrossRef]
- M. N. Hairuddin, N. M. Mubarak, M. Khalid, E. C. Abdullah, R. Walvekar, and R. R. Karri, “Magnetic palm kernel biochar potential route for phenol removal from wastewater,” Environmental Science and Pollution Research, vol. 26, no. 34, pp. 35183–35197, Dec. 2019. [CrossRef]
- M. Daňo, E. Viglašová, K. Štamberg, M. Galamboš, and D. Galanda, “Pertechnetate/perrhenate surface complexation on bamboo engineered biochar,” Materials, vol. 14, no. 3, pp. 1–22, Feb. 2021. [CrossRef]
- M. Daňo, E. Viglašová, M. Galamboš, K. Štamberg, and J. Kujan, “Surface complexation models of pertechnetate on biochar/montmorillonite composite-batch and dynamic sorption study,” Materials, vol. 13, no. 14, Jul. 2020. [CrossRef]
- H. Kim, R. A. Ko, S. Lee, and K. Chon, “Removal efficiencies of manganese and iron using pristine and phosphoric acid pre-treated biochars made from banana peels,” Water (Switzerland), vol. 12, no. 4, Apr. 2020. [CrossRef]
- M. D. Yahya, A. S. Aliyu, K. S. Obayomi, A. G. Olugbenga, and U. B. Abdullahi, “Column adsorption study for the removal of chromium and manganese ions from electroplating wastewater using cashew nutshell adsorbent,” Cogent Eng, vol. 7, no. 1, Jan. 2020. [CrossRef]
- Y. H. Fseha, B. Sizirici, and I. Yildiz, “Manganese and nitrate removal from groundwater using date palm biochar: Application for drinking water,” Environmental Advances, vol. 8, Jul. 2022. [CrossRef]
- M. Khajeh, A. Sarafraz-Yazdi, and A. F. Moghadam, “Modeling of solid-phase tea waste extraction for the removal of manganese and cobalt from water samples by using PSO-artificial neural network and response surface methodology,” Arabian Journal of Chemistry, vol. 10, pp. S1663–S1673, May 2017. [CrossRef]
- M. Idrees et al., “Adsorption and thermodynamic mechanisms of manganese removal from aqueous media by biowaste-derived biochars,” J Mol Liq, vol. 266, pp. 373–380, Sep. 2018. [CrossRef]
- T. M. Alslaibi, I. Abustan, M. Azmier Ahmad, A. Abu Foul, N. Tebal, and P. Pinang, “A review: Production of activated carbon from agricultural byproducts via conventional and microwave heating,” 2013. [CrossRef]
- T. M. Alslaibi, I. Abustan, M. A. Ahmad, and A. Abu Foul, “Preparation of Activated Carbon From Olive Stone Waste: Optimization Study on the Removal of Cu2+, Cd2+, Ni2+, Pb2+, Fe2+, and Zn2+ from Aqueous Solution Using Response Surface Methodology,” J Dispers Sci Technol, vol. 35, no. 7, pp. 913–925, 2014. [CrossRef]
- Author, K. Parvez Fattah, M. Habib Habib, M. Ashraf Ali, and M. Ehosan Habib, “Full Title: Modified Sand for the Removal of Manganese and Arsenic from Groundwater Article Type: General paper (not for a themed issue): 3000-5000 words Modified Sand for the Removal of Manganese and Arsenic from Groundwater.”.
- F. Baharudin, M. Y. Mohd Tadza, S. N. Mohd Imran, and J. Jani, “Removal of Iron and Manganese in Groundwater using Natural Biosorbent,” in IOP Conference Series: Earth and Environmental Science, Institute of Physics Publishing, Apr. 2018. [CrossRef]
- Q. Lu, W. Zhang, X. Xiong, Y. Guo, D. Huang, and H. Liu, “Removal of manganese from aqueous solution by a permeable reactive barrier loaded with hydroxyapatite-coated quartz sand,” Environmental Science and Pollution Research, vol. 30, no. 7, pp. 19393–19409, Feb. 2023. [CrossRef]
- M. E. Hassouna and H. Mem, “International Journal of Bioassays O Or ri ig gi in na al l R Re es se ea ar rc ch h A Ar rt ti ic cl le e OPEN ACCESS *Corresponding Author: REMOVAL OF IRON AND MANGANESE IONS FROM GROUNDWATER USING KAOLIN SUB MICRO POWDER AND ITS MODIFIED FORMS.” [Online]. Available: www.ijbio.com.
- M. S. Mohd Sapingi, M. F. Murshed, H. A. Tajaruddin, and F. Mohd Omar, “Performance Evaluation of Metakaolin as Low Cost Adsorbent for Manganese Removal in Anoxic Groundwater,” Civil and Environmental Engineering Reports, vol. 29, no. 3, pp. 107–122, Sep. 2019. [CrossRef]
- H. Kang, Y. Liu, D. Li, and L. Xu, “Study on the Removal of Iron and Manganese from Groundwater Using Modified Manganese Sand Based on Response Surface Methodology,” Applied Sciences (Switzerland), vol. 12, no. 22, Nov. 2022. [CrossRef]
- X. Xing, T. Huang, Y. Cheng, R. Hu, G. Wen, and K. Li, “The Simultaneous Removal of Ammonium and Manganese from Surface Water in South China by Manganese Co-Oxide Film,” Toxics, vol. 11, no. 1, Jan. 2023. [CrossRef]
- F. A. Dawodu and K. G. Akpomie, “Simultaneous adsorption of Ni(II) and Mn(II) ions from aqueous solution unto a Nigerian kaolinite clay,” Journal of Materials Research and Technology, vol. 3, no. 2, pp. 129–141, 2014. [CrossRef]
- Gogoi, A. G. Shanmugamani, S. V. S. Rao, T. Kumar, and S. Velmurugan, “Study of removal process of manganese using synthetic calcium hydroxyapatite from an aqueous solution,” Desalination Water Treat, vol. 57, no. 14, pp. 6566–6573, Mar. 2016. [CrossRef]
- Z. Abdeen, S. G. Mohammad, and M. S. Mahmoud, “Adsorption of Mn (II) ion on polyvinyl alcohol/chitosan dry blending from aqueous solution,” Environ Nanotechnol Monit Manag, vol. 3, pp. 1–9, Jun. 2015. [CrossRef]
- A. Moawed, N. Burham, and M. F. El-Shahat, “Separation and determination of iron and manganese in water using polyhydroxyl polyurethane foam,” Journal of the Association of Arab Universities for Basic and Applied Sciences, vol. 14, no. 1, pp. 60–66, 2013. [CrossRef]
- S. Patil, S. M. Chavan, and J. U. K. Oubagaranadin, “A review of technologies for manganese removal from wastewaters,” Mar. 01, 2016, Elsevier Ltd. [CrossRef]
- R. Xu et al., “New double network hydrogel adsorbent: Highly efficient removal of Cd(II) and Mn(II) ions in aqueous solution,” Chemical Engineering Journal, vol. 275, pp. 179–188, Sep. 2015. [CrossRef]
- V. A. Pacini, A. M. Ingallinella, and G. Sanguinetti, “Removal of iron and manganese using biological roughing up flow filtration technology,” Water Res, vol. 39, no. 18, pp. 4463–4475, 2005. [CrossRef]
- P. Mouchet, “From conventional to biological removal of iron and manganese in France,” J Am Water Works Assoc, vol. 84, no. 4, pp. 158–167, 1992. [CrossRef]
- J. M. Cerrato, J. O. Falkinham, A. M. Dietrich, W. R. Knocke, C. W. McKinney, and A. Pruden, “Manganese-oxidizing and -reducing microorganisms isolated from biofilms in chlorinated drinking water systems,” Water Res, vol. 44, no. 13, pp. 3935–3945, 2010. [CrossRef]
- D. N. Marcus et al., “Diverse manganese(II)-oxidizing bacteria are prevalent in drinking water systems,” Environ Microbiol Rep, vol. 9, no. 2, pp. 120–128, Apr. 2017. [CrossRef]
- M. Fadel, N. M. Hassanein, M. M. Elshafei, A. H. Mostafa, M. A. Ahmed, and H. M. Khater, “Biosorption of manganese from groundwater by biomass of Saccharomyces cerevisiae,” HBRC Journal, vol. 13, no. 1, pp. 106–113, 2017. [CrossRef]
- R. M. Pérez Silva, A. Ábalos Rodríguez, J. M. Gómez Montes De Oca, and D. Cantero Moreno, “Biosorption of chromium, copper, manganese and zinc by Pseudomonas aeruginosa AT18 isolated from a site contaminated with petroleum,” Bioresour Technol, vol. 100, no. 4, pp. 1533–1538, Feb. 2009. [CrossRef]
- L. Yang, X. Li, Z. Chu, Y. Ren, and J. Zhang, “Distribution and genetic diversity of the microorganisms in the biofilter for the simultaneous removal of arsenic, iron and manganese from simulated groundwater,” Bioresour Technol, vol. 156, pp. 384–388, 2014. [CrossRef]
- J. H. Bruins et al., “Biological and physico-chemical formation of Birnessite during the ripening of manganese removal filters,” Water Res, vol. 69, pp. 154–161, Feb. 2015. [CrossRef]
- Y. Li, Z. Xu, H. Ma, and A. S. Hursthouse, “Removal of Manganese(II) from acid mine wastewater: A review of the challenges and opportunities with special emphasis on mn-oxidizing bacteria and microalgae,” Dec. 01, 2019, MDPI AG. [CrossRef]
- S. Panja, D. Sarkar, and R. Datta, “Removal of tetracycline and ciprofloxacin from wastewater by vetiver grass (Chrysopogon zizanioides (L.) Roberty) as a function of nutrient concentrations,” Environmental Science and Pollution Research, vol. 27, no. 28, pp. 34951–34965, Oct. 2020. [CrossRef]
- H. M. Mustafa and G. Hayder, “Recent studies on applications of aquatic weed plants in phytoremediation of wastewater: A review article,” Mar. 01, 2021, Ain Shams University. [CrossRef]
- “s1677-04202005000100005”.
- L. Singh Thakur, H. Parmar, A. Kumar Varma, A. Kumar Chaurasia, and P. Mondal, “Removal of manganese from synthetic wastewater by Vetiveria zizanioides,” Mater Today Proc, vol. 72, pp. 2687–2690, Jan. 2023. [CrossRef]
- V. K. Mishra and B. D. Tripathi, “Accumulation of chromium and zinc from aqueous solutions using water hyacinth (Eichhornia crassipes),” J Hazard Mater, vol. 164, no. 2–3, pp. 1059–1063, May 2009. [CrossRef]
- Guittonny-Philippe et al., “Selection of wild macrophytes for use in constructed wetlands for phytoremediation of contaminant mixtures,” J Environ Manage, vol. 147, pp. 108–123, Jan. 2015. [CrossRef]
- M. D. Meitei and M. N. V. Prasad, “Adsorption of Cu (II), Mn (II) and Zn (II) by Spirodela polyrhiza (L.) Schleiden: Equilibrium, kinetic and thermodynamic studies,” Ecol Eng, vol. 71, pp. 308–317, 2014. [CrossRef]
- Azimi, A. Azari, M. Rezakazemi, and M. Ansarpour, “Removal of Heavy Metals from Industrial Wastewaters: A Review,” 2017, Wiley-Blackwell. [CrossRef]
- H. Ibrahim Turgut, V. Eyupoglu, and R. Ali Kumbasar, “The comprehensive investigation of the room temperature ionic liquid additives in PVC based polymer inclusion membrane for Cr(VI) transport,” Journal of Vinyl and Additive Technology, vol. 25, pp. E107–E119, Jan. 2019. [CrossRef]
- X. Duan, C. Wang, T. Wang, X. Xie, X. Zhou, and Y. Ye, “A polysulfone-based anion exchange membrane for phosphoric acid concentration and purification by electro-electrodialysis,” J Memb Sci, vol. 552, pp. 86–94, Apr. 2018. [CrossRef]
- T. A. Kurniawan, G. Y. S. Chan, W. H. Lo, and S. Babel, “Physico-chemical treatment techniques for wastewater laden with heavy metals,” Chemical Engineering Journal, vol. 118, no. 1–2, pp. 83–98, May 2006. [CrossRef]
- G. Sandoval-Olvera, P. González-Muñoz, L. Palacio, A. Hernández, M. Ávila-Rodríguez, and P. Prádanos, “Ultrafiltration membranes modified by PSS deposition and plasma treatment for Cr(VI) removal,” Sep Purif Technol, vol. 210, pp. 371–381, Feb. 2019. [CrossRef]
- M. Giagnorio, S. Steffenino, L. Meucci, M. C. Zanetti, and A. Tiraferri, “Design and performance of a nanofiltration plant for the removal of chromium aimed at the production of safe potable water,” J Environ Chem Eng, vol. 6, no. 4, pp. 4467–4475, Aug. 2018. [CrossRef]
- X. Chen, C. Jiang, Y. Zhang, Y. Wang, and T. Xu, “Storable hydrogen production by Reverse Electro-Electrodialysis (REED),” J Memb Sci, vol. 544, pp. 397–405, 2017. [CrossRef]
- Monica Mirea et al., “Progress of Cryogenics and Isotopes Separation THE REMOVAL OF HEAVY METALS USING THE BULK LIQUID MEMBRANE TECHNIQUE.”.
- X. Tang et al., “Gravity-driven membrane filtration treating manganese-contaminated surface water: Flux stabilization and removal performance,” Chemical Engineering Journal, vol. 397, Oct. 2020. [CrossRef]
- Z. Yang, Y. Zhou, Z. Feng, X. Rui, T. Zhang, and Z. Zhang, “A review on reverse osmosis and nanofiltration membranes for water purification,” 2019, MDPI AG. [CrossRef]
- P. A. Alvizuri-Tintaya, E. M. Villena-Martínez, V. G. Lo-Iacono-Ferreira, J. I. Torregrosa-López, and J. Lora-García, “Mathematical and Statistical Evaluation of Reverse Osmosis in the Removal of Manganese as a Way to Achieve Sustainable Operating Parameters,” Membranes (Basel), vol. 13, no. 8, Aug. 2023. [CrossRef]
- S. S. Shenvi, A. M. Isloor, and A. F. Ismail, “A review on RO membrane technology: Developments and challenges,” Jul. 15, 2015, Elsevier B.V. [CrossRef]
- M. Haddad, T. Ohkame, P. R. Bérubé, and B. Barbeau, “Performance of thin-film composite hollow fiber nanofiltration for the removal of dissolved Mn, Fe and NOM from domestic groundwater supplies,” Water Res, vol. 145, pp. 408–417, Nov. 2018. [CrossRef]
- N. Kasim, A. W. Mohammad, and S. R. S. Abdullah, “Performance of membrane filtration in the removal of iron and manganese from Malaysia’s groundwater,” Membrane Water Treatment, vol. 7, no. 4, pp. 227–296, 2016. [CrossRef]
- Y. Huang, D. Wu, X. Wang, W. Huang, D. Lawless, and X. Feng, “Removal of heavy metals from water using polyvinylamine by polymer-enhanced ultrafiltration and flocculation,” Sep Purif Technol, vol. 158, pp. 124–136, Jan. 2016. [CrossRef]
- T. Demirkol et al., “Effects of fe(Oh)3 and mno2 flocs on iron/manganese removal and fouling in aerated submerged membrane systems,” Polymers (Basel), vol. 13, no. 19, Oct. 2021. [CrossRef]
- M. J. Chéry Leal, P. A. P. do Amaral, M. E. Nagel-Hassemer, M. Á. Lobo-Recio, and F. R. Lapolli, “Aquatic humic substances, iron, and manganese removal by ultrafiltration and nanofiltration membranes combined with coagulation–flocculation–sedimentation,” Desalination Water Treat, vol. 55, no. 6, pp. 1662–1671, Aug. 2015. [CrossRef]
- Y. R. Qiu, L. J. Mao, and W. H. Wang, “Removal of manganese from waste water by complexation-ultrafiltration using copolymer of maleic acid and acrylic acid,” Transactions of Nonferrous Metals Society of China (English Edition), vol. 24, no. 4, pp. 1196–1201, 2014. [CrossRef]
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