• Title of article

    Effect of buffer capacity on electrochemical behavior of dopamine and ascorbic acid

  • Author/Authors

    Wang، نويسنده , , Jianguo and Wang، نويسنده , , Lingling and Wang، نويسنده , , Yuling and Yang، نويسنده , , Weiwei and Jiang، نويسنده , , Lili and Wang، نويسنده , , Erkang، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2007
  • Pages
    5
  • From page
    107
  • To page
    111
  • Abstract
    It is well known that the electrochemical oxidation of dopamine and ascorbic acid includes the proton and electron transfers at a glassy carbon electrode and their redox potentials are dependent on the pH of solution. When the concentration of the buffer is not enough to neutralize the protons produced by electrochemical oxidation of dopamine and ascorbic acid, two peaks of them can be observed in cyclic voltammograms. The height of the new peak is in proportion to the concentration of proton acceptor including HPO 4 2 - , 2,4,6-trimethylpyridine, tris (hydroxymethyl) aminomethane. Moreover, the potential of it is dependent on the type and the concentration of buffer at the same pH of bulk solution. However, this phenomenon cannot be attributed to the interaction between proton acceptor and dopamine or ascorbic acid. So, we think the phenomenon is caused by the acute change of pH at the surface of working electrode. Similar results were also observed in the rotating disk voltammograms. It can be concluded that the electrochemical behavior of some compounds is dependent on the concentration of buffer when this concentration is not enough to neutralize the protons produced in electrochemical oxidation. Therefore, we have to attach importance to the buffer capacity in electrochemical measure of some concentrated compounds like ascorbic acid and dopamine.
  • Keywords
    Glassy carbon electrode , Electrochemistry , Buffer capacity , Dopamine , ascorbic acid
  • Journal title
    Journal of Electroanalytical Chemistry
  • Serial Year
    2007
  • Journal title
    Journal of Electroanalytical Chemistry
  • Record number

    1666479