(2018) Efficient photocatalytic oxidation of arsenite from contaminated water by FeO-MnO nanocomposite under UVA radiation and process optimization with experimental design. Chemosphere. pp. 303-312. ISSN 1879-1298
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Abstract
The efficiency of photocatalytic oxidation process in arsenite (As(III)) removal from contaminated water by a new FeO-MnO nanocomposite under UV radiation was investigated. The effect of nanocomposite dosage, pH and initial As(III) concentration on the photocatalytic oxidation of As(III) were studied by experimental design. The synthesized nanocomposite had a uniform and spherical morphological structure and contained 49.83% of FeO and 29.36% of MnO. Based on the experimental design model, in photocatalytic oxidation process, the effect of pH was higher than other parameters. At nanocomposite concentrations of more than 12 mg L, pH 4 to 6 and oxidation time of 30 min, photocatalytic oxidation efficiency was more than 95% for initial As(III) concentration of less than 500 μg L. By decreasing pH and increasing the nanocomposite concentration, the photocatalytic oxidation efficiency was increased. Furthermore, by increasing the oxidation time from 10 to 240 min, in addition to oxidation of As(III) to arsenate (As(V)), the residual As(V) was adsorbed on the FeO-MnO nanocomposite and total As concentration was decreased. Therefore, FeO-MnO nanocomposite as a bimetal oxide, at low doses and short time, can enhance and improve the efficiency of the photocatalytic oxidation and adsorption of As(III) from contaminated water resources. Furthermore, the energy and material costs of the UV/FeO-MnO system for photocatalytic oxidation of 1 mg L As(III) in the 1 L laboratory scale reactor was 0.0051 €.
Item Type: | Article |
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Page Range: | pp. 303-312 |
Journal or Publication Title: | Chemosphere |
Volume: | 207 |
ISSN: | 1879-1298 |
Depositing User: | ms soheila Bazm |
URI: | http://eprints.ssu.ac.ir/id/eprint/10545 |
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