Biosorption Cr(VI) using Biofilm Streamer

https://doi.org/10.22146/jfs.37965

Andi Kurniawan(1*)

(1) University of Brawijaya
(*) Corresponding Author

Abstract


Water contamination is one of the main environmental problem presently. One of the contaminants that become serious problem in aquatic ecosystems is Cr(VI) which is toxic for living organisms. Therefore, technology to solve this problem is urgent. Biosorption is one of the alternative technologies that inexpensive and environmentally friendly. The present study analyzed the biosorption of Cr(VI) using streamer biofilm. Biofilm is a predominant habitat for most microbes in aquatic ecosystems. The sample of biofilms used in this study was streamer biofilm collected from the river. The results show that the streamer biofilm had ability to adsorb Cr(VI). The adsorption of Cr(VI) are fitted well to the Langmuir adsorption isotherm model. The maximum adsorbed amount of Cr(VI) is estimated to be around 8.33 mg/g and the adsorption equilibrium constant is around 0.02 L/mg. The results of the present study indicate that the streamer biofilm is a promising alternative biosorbent for the biosorption of water pollutant such as Cr(VI).

Keywords


Biosorption; Cr(VI); heavy metal; biofilm; streamer biofilm; water contamination

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References

Beukes, J.P., S.P. du Preez., P.G. van Zyl., D. Paktunc., T. Fabritius., M. Paatalo & M. Cramer. 2017. Review of Cr(VI) environmental practices in the chromite mining and smelting industry-relevance to development of the ring of fire, Canada. Journal of Cleaner Production 165: 874-889.

Chen, H., J. Dou & H. Xu. 2017. Removal of Cr(VI) ions by sewage sludge compost biomass from aqueous solutions: reduction to Cr(III) and biosorption. Applied Surface Science 425: 728-735.

D’Acunto B., L. Frunzo & M.R. Mattei. 2018. On a free boundary problem for biosorption in biofilms. Nonlinear Analysis: Real World Applications 39: 120- 141.

Ellis, J.B. & D. Butler. 2015. Surface water sewer misconnections in England and Wales: pollution sources and impacts. Science of The Total Environment 526: 98-109.

Freifelder, D. 1985. Principles of physical chemistry with application to the biological sciences, 2nd ed. Jones and Barlett Publisher, Boston.

Gadd, G.M., 2009. Biosorption: critical review of scientific rationale, environmental importance and significance for pollution treatment. J. Chem. Technol. Biotechnol. 84: 13-28.

Guntur, G., A.T. Yanuar., S.H. Sari & A. Kurniawan. 2017. Analisis kualitas perairan berdasarkan metode indeks pencemaran di Pesisir Timur Kota Surabaya. DEPIK Jurnal Ilmu-Ilmu Perairan, Pesisir dan Perikanan 6(1): 81-89.

Gupta N.K., A. Sengupta., A. Gupta., J.R. Sonawane & H. Sahoo. 2018. Biosorption an alternative method for nuclear waste management: a critical review. Journal of Environmental Chemical Engineering. 6(2): 2159- 2175.

Han, D., M.J. Currell & G. Cao. 2016. Deep challenges for China’s war on water pollution. Environmental Pollution 218: 1222-1233.

Jacob, J.M., C. Karthik., R.G. Saratale., S.S. Kumar., D. Prabakar., K. Kadirvelu & A. Pugazhendhi. 2018. Biological approaches to tackle heavy metal pollution: a survey of literature. Journal of Environmental Management 217: 56-70.

Jobby, R., P. Jha., A.K. Yadav & N. Desai. Biosorption and biotransformation of hexavalent chromium [Cr(VI)]: a comprehensive review. Chemosphere 207: 255- 266.

Kurniawan, A., Sukandar., C. Satriya & Guntur. 2018. Biofilm as a bioindicator of Cr VI pollution in the Lotic Ecosystems. IOP Conf. Ser.: Earth Environ. Sci. 137 012062: 1-5.

Kurniawan, A. & Y. Fukuda. 2016. Electric charge characteristics of biofilms formed on various surfaces. J. Pure App. Chem. Res. 5(2): 95-100.

Kurniawan, A. & T. Yamamoto. 2015. Biosorption of lithium using biofilm matrix of natural microbial consortium. Microbiology Indonesia 9(3): 106-112.

Kurniawan, A., Y. Tsuchiya., S. Eda & H. Morisaki. 2015. Characterization of the internal ion environment of biofilms based on charge density and shape of ion. Colloids and Surfaces B: Biointerfaces 136: 22-26.

Kurniawan, A., T. Yamamoto., Y. Tsuchiya & H. Morisaki. 2012. Analysis of the ion adsorption-desorption characteristics of biofilm matrices. Microbes and Environments 27(4): 399-406.

Liu, Y. & Y.J. Liu. 2007. Biosorption, kinetic and thermodynamics. Sep. Purif. Technol. 61: 229-242.

Vendruscolo, F., G.L.d.R. Ferreira & N.R.A. Filho. 2017. Biosorption of hexavalent chromium by microorganism. International Biodeterioration & Biodegration 119: 87-95.

Vijayaraghavan, K. & Y.S. Yun. 2008. Bacterial biosorbent and biosorption. Biotechnol. Adv. 26: 266-291.

Volesky, B. 2007. Biosorption and me. Water Res. 41: 4017-4029.



DOI: https://doi.org/10.22146/jfs.37965

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