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2023 | OriginalPaper | Chapter

Application Study of Fe-MOF Material for Fluoride Removal from Hydrometallurgy Waste Liquid

Authors : Wenjuan Wang, Yanfang Huang, Guihong Han

Published in: TMS 2023 152nd Annual Meeting & Exhibition Supplemental Proceedings

Publisher: Springer Nature Switzerland

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Abstract

Fluoride contamination in hydrometallurgy waste liquid is a primary environmental issue across the world, with health hazards such as dental and skeletal fluorosis. In this work, Fe-MOF synthesized by the solvothermal method was used as an adsorbent to remove fluoride from hydrometallurgy waste liquid. Different parameters including contact time, adsorbent dosage, solution pH and initial fluoride concentration were investigated synthetically. The adsorption of fluoride by Fe-MOF reached 43.732 mg/g when the contact time was 30 min, the adsorbent dosage was 200 mg/L, the solution pH was 6 and the initial fluoride concentration was 60 mg/L. The results revealed that Fe-MOF can effectively remove fluoride from the solution and has great application prospects in hydrometallurgy waste liquid treatment.

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Literature
1.
go back to reference Zeng G, Ling B, Li Z et al (2019) Fluorine removal and calcium fluoride recovery from rare-earth smelting wastewater using fluidized bed crystallization process. J Hazard Mater 373:313–320CrossRef Zeng G, Ling B, Li Z et al (2019) Fluorine removal and calcium fluoride recovery from rare-earth smelting wastewater using fluidized bed crystallization process. J Hazard Mater 373:313–320CrossRef
2.
go back to reference Samrat MVVN, Gandhi KS, Rao KK (2020) Modelling the adsorption of fluoride onto activated alumina in the presence of other ions. J Environ Chem Eng 8(5):103934CrossRef Samrat MVVN, Gandhi KS, Rao KK (2020) Modelling the adsorption of fluoride onto activated alumina in the presence of other ions. J Environ Chem Eng 8(5):103934CrossRef
3.
go back to reference Naskar MK (2020) Preparation of colloidal hydrated alumina modified NaA zeolite derived from rice husk ash for effective removal of fluoride ions from water medium. J Asian Ceram Soc 8(2):437–447CrossRef Naskar MK (2020) Preparation of colloidal hydrated alumina modified NaA zeolite derived from rice husk ash for effective removal of fluoride ions from water medium. J Asian Ceram Soc 8(2):437–447CrossRef
4.
go back to reference Organization WH (2011) Guidelines for drinking-water quality 4th ed Organization WH (2011) Guidelines for drinking-water quality 4th ed
5.
go back to reference Wichrowska B (1997) Standards for drinking water quality, GB 5749–2006. Roczniki Państwowego Zakładu Higieny 48:163–171 Wichrowska B (1997) Standards for drinking water quality, GB 5749–2006. Roczniki Państwowego Zakładu Higieny 48:163–171
6.
go back to reference Paudyal H, Inoue K, Kawakita H et al (2018) Removal of fluoride by effectively using spent cation exchange resin. J Mater Cycles Waste Manag 20(2):975–984CrossRef Paudyal H, Inoue K, Kawakita H et al (2018) Removal of fluoride by effectively using spent cation exchange resin. J Mater Cycles Waste Manag 20(2):975–984CrossRef
7.
go back to reference Hou D, Wang J, Zhao C et al (2010) Fluoride removal from brackish groundwater by direct contact membrane distillation. Water Sci Technol 22(12):1860–1867 Hou D, Wang J, Zhao C et al (2010) Fluoride removal from brackish groundwater by direct contact membrane distillation. Water Sci Technol 22(12):1860–1867
8.
go back to reference Piñón M, Raúl A, Germán B-M et al (2003) Removal of arsenic and fluoride from drinking water with cake alum and a polymeric anionic flocculent. Fluoride 36:122–128 Piñón M, Raúl A, Germán B-M et al (2003) Removal of arsenic and fluoride from drinking water with cake alum and a polymeric anionic flocculent. Fluoride 36:122–128
9.
go back to reference Zhu J, Zhao H, Ni J (2007) Fluoride distribution in electrocoagulation defluoridation process. Sep Purif Technol 56(2):184–191CrossRef Zhu J, Zhao H, Ni J (2007) Fluoride distribution in electrocoagulation defluoridation process. Sep Purif Technol 56(2):184–191CrossRef
10.
go back to reference Vázquez-Guerrero A, Alfaro-Cuevas-Villanueva R, Rutiaga-Quiñones JG et al (2016) Fluoride removal by aluminum-modified pine sawdust: effect of competitive ions. Ecol Eng 94:365–379CrossRef Vázquez-Guerrero A, Alfaro-Cuevas-Villanueva R, Rutiaga-Quiñones JG et al (2016) Fluoride removal by aluminum-modified pine sawdust: effect of competitive ions. Ecol Eng 94:365–379CrossRef
11.
go back to reference Kuang L, Liu Y, Fu D et al (2017) FeOOH-graphene oxide nanocomposites for fluoride removal from water: acetate mediated nano FeOOH growth and adsorption mechanism. J Colloid Interface Sci 490:259–269CrossRef Kuang L, Liu Y, Fu D et al (2017) FeOOH-graphene oxide nanocomposites for fluoride removal from water: acetate mediated nano FeOOH growth and adsorption mechanism. J Colloid Interface Sci 490:259–269CrossRef
12.
go back to reference Kumar E, Bhatnagar A, Ji M et al (2009) Defluoridation from aqueous solutions by granular ferric hydroxide (GFH). Water Res 43(2):490–498CrossRef Kumar E, Bhatnagar A, Ji M et al (2009) Defluoridation from aqueous solutions by granular ferric hydroxide (GFH). Water Res 43(2):490–498CrossRef
13.
go back to reference Ghorai S, Pant KK (2004) Investigations on the column performance of fluoride adsorption by activated alumina in a fixed-bed. Chem Eng J 98(1):165–173CrossRef Ghorai S, Pant KK (2004) Investigations on the column performance of fluoride adsorption by activated alumina in a fixed-bed. Chem Eng J 98(1):165–173CrossRef
14.
go back to reference Daifullah AAM, Yakout SM, Elreefy SA (2007) Adsorption of fluoride in aqueous solutions using KMnO4-modified activated carbon derived from steam pyrolysis of rice straw. J Hazard Mater 147(1):633–643CrossRef Daifullah AAM, Yakout SM, Elreefy SA (2007) Adsorption of fluoride in aqueous solutions using KMnO4-modified activated carbon derived from steam pyrolysis of rice straw. J Hazard Mater 147(1):633–643CrossRef
15.
go back to reference Liu Q, Guo H, Shan Y (2010) Adsorption of fluoride on synthetic siderite from aqueous solution. J Fluorine Chem 131(5):635–641CrossRef Liu Q, Guo H, Shan Y (2010) Adsorption of fluoride on synthetic siderite from aqueous solution. J Fluorine Chem 131(5):635–641CrossRef
16.
go back to reference Wang T, Zhao P, Lu N et al (2016) Facile fabrication of Fe3O4/MIL-101(Cr) for effective removal of acid red 1 and orange G from aqueous solution. Chem Eng J 295:403–413CrossRef Wang T, Zhao P, Lu N et al (2016) Facile fabrication of Fe3O4/MIL-101(Cr) for effective removal of acid red 1 and orange G from aqueous solution. Chem Eng J 295:403–413CrossRef
17.
go back to reference Tan T, Krusnamurthy P, Nakajima H et al (2020) Adsorptive, kinetics and regeneration studies of fluoride removal from water using zirconium-based metal organic frameworks. RSC Adv 10:18740–18752CrossRef Tan T, Krusnamurthy P, Nakajima H et al (2020) Adsorptive, kinetics and regeneration studies of fluoride removal from water using zirconium-based metal organic frameworks. RSC Adv 10:18740–18752CrossRef
18.
go back to reference Li W, Zhang T, Lv L, et al (2021) Room-temperature synthesis of MIL-100(Fe) and its adsorption performance for fluoride removal from water. Colloids Surf A 624:126791 Li W, Zhang T, Lv L, et al (2021) Room-temperature synthesis of MIL-100(Fe) and its adsorption performance for fluoride removal from water. Colloids Surf A 624:126791
19.
go back to reference Zhang N, Yang X, Yu X et al (2014) Al-1,3,5-benzenetricarboxylic metal–organic frameworks: A promising adsorbent for defluoridation of water with pH insensitivity and low aluminum residual. Chem Eng J 252:220–229CrossRef Zhang N, Yang X, Yu X et al (2014) Al-1,3,5-benzenetricarboxylic metal–organic frameworks: A promising adsorbent for defluoridation of water with pH insensitivity and low aluminum residual. Chem Eng J 252:220–229CrossRef
20.
go back to reference Maksimchuk NV, Kovalenko KA, Fedin VP et al (2012) Cyclohexane selective oxidation over metal–organic frameworks of MIL-101 family: superior catalytic activity and selectivity. Chem Commun 48(54):6812–6814CrossRef Maksimchuk NV, Kovalenko KA, Fedin VP et al (2012) Cyclohexane selective oxidation over metal–organic frameworks of MIL-101 family: superior catalytic activity and selectivity. Chem Commun 48(54):6812–6814CrossRef
Metadata
Title
Application Study of Fe-MOF Material for Fluoride Removal from Hydrometallurgy Waste Liquid
Authors
Wenjuan Wang
Yanfang Huang
Guihong Han
Copyright Year
2023
DOI
https://doi.org/10.1007/978-3-031-22524-6_63

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