• Title of article

    Enhanced decolorization of methyl orange using zero-valent copper nanoparticles under assistance of hydrodynamic cavitation

  • Author/Authors

    Li، نويسنده , , Pan-Shu Song، نويسنده , , Yuan and Wang، نويسنده , , Shuai and Tao، نويسنده , , Zheng and Yu، نويسنده , , Shuili and Liu، نويسنده , , Yanan، نويسنده ,

  • Pages
    7
  • From page
    132
  • To page
    138
  • Abstract
    The rate of reduction reactions of zero-valent metal nanoparticles is restricted by their agglomeration. Hydrodynamic cavitation was used to overcome the disadvantage in this study. Experiments for decolorization of methyl orange azo dye by zero-valent copper nanoparticles were carried out in aqueous solution with and without hydrodynamic cavitation. The results showed that hydrodynamic cavitation greatly accelerated the decolorization rate of methyl orange. The size of nanoparticles was decreased after hydrodynamic cavitation treatment. The effects of important operating parameters such as discharge pressure, initial solution pH, and copper nanoparticle concentration on the degradation rates were studied. It was observed that there was an optimum discharge pressure to get best decolorization performance. Lower solution pH were favorable for the decolorization. The pseudo-first-order kinetic constant for the degradation of methyl orange increased linearly with the copper dose. UV–vis spectroscopic and Fourier transform infrared (FT-IR) analyses confirmed that many degradation intermediates were formed. The results indicated hydroxyl radicals played a key role in the decolorization process. Therefore, the enhancement of decolorization by hydrodynamic cavitation could due to the deagglomeration of nanoparticles as well as the oxidation by the in situ generated hydroxyl radicals. These findings greatly increase the potential of the Cu0/hydrodynamic cavitation technique for use in the field of treatment of wastewater containing hazardous materials.
  • Keywords
    Azo dye , Zero-valent copper , Nanoparticle , Hydrodynamic cavitation , Hydroxyl radicals , Agglomeration
  • Journal title
    Astroparticle Physics
  • Record number

    2008204