4.7 Article

Fe-Mn bi-metallic oxides loaded on granular activated carbon to enhance dye removal by catalytic ozonation

Journal

ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
Volume 23, Issue 18, Pages 18800-18808

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s11356-016-7030-5

Keywords

Catalytic ozonation; Fe-Mn oxides; Granular activated carbon; Dye removal

Funding

  1. Natural Science Foundation of Hebei Province, P. R. China [B2015203303, B2015203300]
  2. China Postdoctoral Science Foundation [2015M580216]
  3. Youth Teacher Independent Research Program of Yanshan University [15LGA013, 14LGB021]
  4. Doctoral Foundation Program of Yanshan University [B849, B878]

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A Fe-Mn bi-metallic oxide supported on granular activated carbon (Fe-Mn GAC) has been fabricated by an impregnation-desiccation method and tested in the catalytic ozonation of methyl orange (MO) degradation and mineralization. X-ray diffraction, scanning electron microscopy, and Fourier transform infrared spectroscopy characterizations revealed that Fe-Mn oxides were successfully loaded and uniformly distributed on the GAC, and nitrogen adsorption isotherms showed that the supported GAC retained a large surface area and a high pore volume compared with the pristine GAC. The catalytic activity was systematically assessed by monitoring the MO removal efficiencies at different operational parameters, such as catalyst dosage, initial solution pH, and ozone flow rate. The Fe-Mn GAC exhibited better catalytic activity relative to ozone alone and GAC alone, improving the TOC removal by 24.5 and 11.5 % and COD removal by 13.6 and 7.3 %, respectively. The reusability of the hybrid was examined over five consecutive cyclic treatments. The Fe-Mn GAC catalytic activity was only a slight loss in the cycles, showing good stability. The addition of Na2CO3 as hydroxyl radicals (center dot OH) scavengers proved that the catalytic ozonation mechanism was the enhanced generation of center dot OH by the Fe-Mn GAC. The above results render the Fe-Mn GAC an industrially promising candidate for catalytic ozonation of dye contaminant removal.

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