Efficient Removal Of Bromate From Aqueous Solution Through Electrocoagualtion Using Aluminum Electrodes

Authors

  • Nasser M. Abu Ghalwa Department of Chemistry, Al-Azhar University, Gaza, Palestine
  • Hossam El din El Nazer Department of Chemistry, University, Cairo, Egypt, Turkey
  • Nader B. Farhat Department of Chemistry, Al-Azhar University, Gaza, Palestine
  • Mahmud Sror Department of Chemistry, Al-Azhar University, Gaza, Palestine

DOI:

https://doi.org/10.51601/ijse.v3i1.51

Keywords:

Electrocoagulation; Aluminum; Iron; bromate; Pesticide and Aqueous solution.

Abstract

In this study  the removal efficiency of bromate from aqueous solution using the electrocoagulation process was investigated. The effects of operational parameters such as initial pH, initial bromate concentration, current density, type  electrode, salt concentration, and temperature on the removal efficiency have been studied. With an initial pH of 3.7, an initial bromate concentration of 100 mg/L, (current density 22.7 mA/cm2 using Al electrodes, salt concentration of 1.5 g/L NaCl and temperature of 25° C, The results showed that the removal percentage for bromate  was 97% using Al/Al electrodes at 10 min. It can be concluded that electrocoagulation process by Al electrode is very efficient and clean process for bromate removal from Aqueous solution.

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References

Imran Ali1 & V K Gupta, Advances in water treatment by adsorption technology , NATURE PROTOCOLS 1 ,6 | 2006,1-5

Guy Howard, Katrina Charles , Securing 2020 vision for 2030: climate change and ensuring resilience in water and sanitation services

Nicholas L. Cain Peter H. Gleick , The global water crisis , Issues in Science and Technology • 1-5 , 2005

. Ying Zhua , Oliver R. Price, Drivers of contaminant levels in surface water of China during 2000–2030: Relative importance for illustrative home and personal care product chemicals , environment International 115 (2018) 161–169

World Health Organization (WHO) 1996. Guidelines for drinking water quality. 2nd ed. Vol. 2. Health criteria and other supporting information. pp: 822-828

Kurokawa Y, A Mackawa, N Takahashi and Y Hayeshi 1990. Toxicity and carcinogenicity of potassium bromate a new renal carcinogen. Environ. Health Perspect, 87: 309-355.

Diachenko GW and CR Warner 2002. Potassium bromate in bakery products. In LEE, TC. and HO, CT. (Eds.). Bioactive Compounds in Foods. Washington: American Chemical Society, p.218.

Ueno H, K Oishi, Y Sayato, and K Nakamuno 2000. Oxidative cell damage in Kat-Sod assay of oxyhalides as inorganic disinfection byproducts and their occurrence by ozonation. Arch Environ Contam Toxicol, 38: 1-6

Mack RB 1988. Round up the usual suspects. Potasium bromate poisioning. N. Carolina Med J, 49: 243-245

U.S. Environmental Protection Agency, TOXICOLOGICAL REVIEW OF BROMATE , 2001 , 1-56

Haag, W.R., and Holgné, J. (1983). Ozonation of bromide-containing waters: Kinetics of formation of hypobromus acid and bromate. Environ. Sci. Technol. 17, 261–267.

. Centi G, Perathoner S (2003) Appl Catal B Environ 41: 15–29.

Tajeddine L, Nemmaoui M, Mountacer H, Dahchour A, Sarakha M, et al. (2014) Clay and Soil Photolysis of the Pesticides Mesotrione and Metsulfuron Methyl. Applied and Environmental Soil Science.

. Vlyssides A, Karlis P, Loizidou M, Zorpas A, Arapoglou D (2001) Treatment of leachate from a domestic solid waste sanitary landfill by an electrolysis system. Environ Technol 22: 1467-1476.

Naumczyk J, Szpyrkowicz I, De Faverri DM, Zilio- Grandi F (1996) Environmental Water: Advances in Treatment, Remediation and Recycling. Trans IChemE 74B: 59.

Nasser M Ghalwa, Ahmed Z Musabeh and Nader B Farhat Performance Efficiency of Electrocoagulation Adsorption Process of Oxyfluorfen Herbicide from Aqueous Solutions Using Different Anodes , J Environ Anal Toxicol 2017, 7:3

Carneiro PA, Fugivara CS, Nogueira FP, Boralle N, Zanoni VB, et al. (2003) A Comparative on Chemical and Electrochemical Degradation of Reactive Blue 4 Dye. Portugaliae Electrochimica Acta 21: 49-67.

Chen G (2004) Electro chemical technologies in wastewater treatment. Sep. Purif. Technol 38: 11-41

Vlyssides A, Karlis P, Loizidou M, Zorpas A, Arapoglou D (2001) Treatment of leachate from a domestic solid waste sanitary landfill by an electrolysis system. Environ Technol 22: 1467-1476.

yssides AG, Karlis PK, Zorpas AA (1999) Environ. Int 25: 663.

Ghosh D, Medhi CR, Solanki H, Purkait MK (2008) Decolorization of Crystal Violet Solution by Electrocoagulation. J environ Protect 2: 25 –35.

. Mollah MY, Morkovsky P, Gomes JA, Kesmez M, Parga J, et al. (2004) Fundamentals, present and future perspectives of electrocoagulation. J Hazard Mater 114: 199-210.

. H.S.Awad , N. Abo Galwa , Electrochemical degradation of Acid Blue and Basic Brown dyes on Pb/PbO2 electrode in the presence of different conductive electrolyte and effect of various operating factors , Chemosphere , 2005 .

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Published

2023-02-20

How to Cite

M. Abu Ghalwa, N., El din El Nazer, H. ., B. Farhat, N. ., & Sror, M. . (2023). Efficient Removal Of Bromate From Aqueous Solution Through Electrocoagualtion Using Aluminum Electrodes. International Journal of Science and Environment (IJSE), 3(1), 13–20. https://doi.org/10.51601/ijse.v3i1.51