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Environmental Chemistry Environmental Chemistry Society
Environmental problems - Chemical approaches
RESEARCH ARTICLE

Fluoride removal from aqueous solution by Ca-pretreated macrophyte biomass

Patricia Miretzky A B , Carolina Muñoz A and Alejandro Carrillo-Chávez A
+ Author Affiliations
- Author Affiliations

A Centro de Geociencias-UNAM, Campus Juriquilla, Boulevard Juriquilla 3001, Queretaro 76230, Mexico.

B Corresponding author. Email: patovior@geociencias.unam.mx

Environmental Chemistry 5(1) 68-72 https://doi.org/10.1071/EN07078
Submitted: 23 October 2007  Accepted: 15 December 2007   Published: 22 February 2008

Environmental context. Fluoride concentrations in drinking water above 1.5 mg L–1 may be detrimental to human health. Many methods have been developed for removing excessive fluoride from drinking water. The use of an aquatic macrophyte biomass (Eleocharis acicularis) pretreated with Ca2+, a low-cost natural material, could be a technique for rural populations in developing countries that cannot afford treated or bottled water for daily consumption.

Abstract. The use of an aquatic macrophyte biomass (Eleocharis acicularis) pretreated with Ca2+ as a low-cost natural material for the removal of fluoride from aqueous solution was studied. Batch experiments were carried out to determine fluoride sorption capacity and the efficiency of the sorption process under different pH, initial F and macrophyte biomass doses. The experimental data showed good fitting to Langmuir and Freundlich isotherm models. The maximum F adsorption capacity was 0.110 mmol g–1 with an efficiency of 64.5% (pH 6.0; 5.0 g L–1 Ca-pretreated biomass). The binding of Ca2+ to the biomass increased the removal efficiency over 100%. The F removal kinetics were rapid, less than 30 min, and best described by the pseudo-second order rate model. The rate constant, the initial sorption rate and the equilibrium sorption capacity were determined. These results may be useful for deprived rural population water supply schemes in Mexico and in other developing countries.

Additional keywords: isotherms, kinetics, remediation.


Aknowledgements

Financial support of the present study was provided by UNAM-PAPIIT IN-114102–3 and SEMARNAT-CONACyT 2002 C01–1420 Projects. The authors wish to thank the assistance of Jorge Servin in the laboratory work.


References


[1]   World Health Organization, Guidelines for Drinking Water Quality, First Addendum, 3rd edn 2006, Vol 1 (World Health Organization: Geneva, Switzerland).

[2]   S. Ayoob , A. K. Guptas , Fluoride in drinking water: a review on the status and stress effects. Crit. Rev. Env. Sci. Tec. 2006 , 36,  433.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[3]   F. Diaz-Barriga , A. Navarro-Quizada , M. Grijalva , M. Grimaldo , J. P. Loyola-Rodriguez , M. D. Ortiz , Endemic fluorosis in Mexico. 1997 , 30,  233.
         open url image1

[4]   S. Venkata Mohan , S. Ramanaiah , B. Rajkumar , P. Sarma , Biosorption of fluoride from aqueous phase onto algal Spirogyra IO1 and evaluation of adsorption kinetics. Bioresour. Technol. 2007 , 98,  1006.
        | Crossref | GoogleScholarGoogle Scholar | PubMed |  open url image1

[5]   S. Ghorai , K. Pant , Investigations on the column performance of fluoride adsorption by activated alumina in a fixed-bed. Chem. Eng. J. 2004 , 98,  165.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[6]   N. Das , P. Pattanaïk , R. Das , Defluoridation of drinking water using activated titanium-rich bauxite. J. Colloid Interf. Sci. 2005 , 292,  1.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[7]   S. Meenakshi , N. Viswanathan , Identification of selective ion-exchange resin for fluoride sorption. J. Colloid Interf. Sci. 2007 , 308,  438.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[8]   S. Maliyekkal , A. Sharma , L. Philip , Manganese-oxide-coated alumina: a promising sorbent for defluoridation of water. Water Res. 2006 , 40,  3497.
        | Crossref | GoogleScholarGoogle Scholar | PubMed |  open url image1

[9]   Y.-H. Li , S. Wang , X. Zhang , J. Wei , C. Xu , Z. Luan , D. Wu , Adsorption of fluoride from water by aligned carbon nanotubes. Mater. Res. Bull. 2003 , 38,  469.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[10]   X. Fan , D. J. Parker , M. D. Smith , Adsorption kinetics of fluoride on low cost materials. Water Res. 2003 , 37,  4929.
        | Crossref | GoogleScholarGoogle Scholar | PubMed |  open url image1

[11]   B. Volesky , Biosorption and me. Water Res. 2007 , 41,  4017.
        | Crossref | GoogleScholarGoogle Scholar | PubMed |  open url image1

[12]   D. Kratochvil , B. Volesky , Advances in the biosorption of heavy metals. Trends Biotechnol. 1998 , 16,  291.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[13]   M. Bhatnagar , A. Bhatnagar , S. Jha , Interactive biosorption by microalgal biomass as a tool for fluoride removal. Biotechnol. Lett. 2002 , 24,  1079.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[14]   A. Kapoor , T. Viraraghavan , Fungal biosorption – an alternative treatment option for heavy metal-bearing waste material – a review. Bioresour. Technol. 1995 , 53,  195.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[15]   S. Sinha , K. Pandey , D. Mohan , K. Singh , Removal of fluoride from aqueous solutions by Eichhornia crassipes biomass and its carbonized form. Ind. Eng. Chem. Res. 2003 , 42,  6911.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[16]   L. Udaya Simha , B. Panigrahy , S. Ramakrishna , Preliminary studies on fluoride adsorption by water hyacinth. Indian J. Env. Prot. 2002 , 22,  506.
         open url image1

[17]   A. Raichur , M. Basu , Adsorption of fluoride onto mixed rare earth oxides. Sep. Purif. Technol. 2001 , 24,  121.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[18]   I. Schneider , J. Rubio , R. Smith , Biosorption of metals onto plant biomass: exchange adsorption or surface precipitation? Int. J. Miner. Process. 2001 , 62,  111.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[19]   Y. Ho , G. McKay , Pseudo-second order model for sorption process. Process Biochem. 1999 , 34,  451.
        | Crossref | GoogleScholarGoogle Scholar |  open url image1

[20]   M. Srimurali , A. Pragathi , J. Karthikeyan , A study on removal of fluorides from drinking water by adsorption onto low-cost materials. Environ. Pollut. 1998 , 99,  285.
        | Crossref | GoogleScholarGoogle Scholar | PubMed |  open url image1