• Title of article

    Amoxicillin degradation with electro-persulfate combined with H2O2 from aqueous solution using response surface methodology

  • Author/Authors

    Meserghani ، Maryam School of Public Health - Isfahan University of Medical Sciences , Nikaeen ، Mahnaz Department of Environmental Health Engineering - School of Health - Isfahan University of Medical Sciences (IUMS) , Jonidi Jafari ، Ahmad Environmental and Occupational Hazards Control Research Center - Iran University of Medical Sciences , Dehghani ، Mohammad Hadi Department of Environmental Health Engineering - School of Public Health - Tehran University of Medical Sciences , Bina ، Bijan Department of Environmental Health Engineering - School of Health - Isfahan University of Medical Sciences (IUMS)

  • From page
    209
  • To page
    216
  • Abstract
    Background: Discharging wastewaters containing antibiotic into the environment causes some adverse effects on the human health and other organisms. The present study investigated the efficiency of electropersulfate combined with hydrogen peroxide (H2O2) process as a chemical oxidation in amoxicillin (AMX) degradation. Methods: Optimization of the significant operational independent variables was explored for removal of AMX. Central composite design (CCD) was employed as a statistical tool for experimental design. Highperformance liquid chromatography (HPLC) was used for measuring AMX concentration. The most effective factors of the electropersulfate and H2O2 on the removal efficiency of AMX such as initial concentration of AMX, initial pH, PS/H2O2 molar ratio, and the current density were measured. Results: The optimum conditions for electropersulfate removal efficiency of AMX to reach the degradation efficiency of higher than 95.28 ± 2.64% at reaction time of 60 minutes were obtained at pH = 4.23, AMX concentration = 31.9 mmol/L, current density = 39 mA/cm2, and PS/H2O2 molar ratio = 0.82. AMX degradation was satisfactorily predicted by the quadratic model with high possibility and confidence level of 95%. The quadratic model had high regression coefficients (R2 = 0.9964 and R2 adj = 0.9926), which was totally acceptable. The removal efficiency of AMX reduced from 87.3 ± 6.1 to 25.9 ± 9 as pH increased from 5.5 to 7. Conclusion: According to the results, the electropersulfate and H2O2 process can be suggested as the most effective, high efficient, and insitu chemical oxidation for degradation of AMX.
  • Keywords
    Amoxicillin , Hydrogen peroxide , Oxidation , reduction , Antibiotic
  • Journal title
    Environmental Health Engineering and Management Journal
  • Journal title
    Environmental Health Engineering and Management Journal
  • Record number

    2513346