• Title of article

    Comparative evaluation of the symmetric and asymmetric Marcus–Hush formalisms of electrode kinetics – The one-electron oxidation of tetraphenylethylene in dichloromethane on platinum microdisk electrodes

  • Author/Authors

    Suwatchara، نويسنده , , Danu and Henstridge، نويسنده , , Martin C. and Rees، نويسنده , , Neil V. and Laborda، نويسنده , , Eduardo and Compton، نويسنده , , Richard G.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2012
  • Pages
    7
  • From page
    120
  • To page
    126
  • Abstract
    We report an experimental comparative evaluation of the Butler–Volmer (BV), symmetric and asymmetric Marcus–Hush (MH) kinetic formalisms. Numerical simulations using these kinetic models are employed to fit experimental cyclic voltammetry of the one-electron oxidation of tetraphenylethylene in dichloromethane under conditions of full electrolyte support at a platinum microdisk electrode. When compared with the BV formalism, the symmetric MH model is seen to give rise to an inferior quality of fit determined by calculating the mean scaled absolute deviation (MSAD) between theory and experiment. This can be traced to its inherent assumption of identical force constants of the reagent and product, rendering it unable to address the asymmetry that exists between the forward and reverse sweeps of the cyclic voltammetry due to the difference in force constants. Where the asymmetric MH formalism is used, cyclic voltammograms with comparable quality of fit to that of BV are obtained. The best-fit parameters obtained for each kinetic model (25 °C) are: Volmer: k0 = 0.17 cm s−1, α = 0.65 ric Marcus–Hush: k0 = 0.15 cm s−1, λ ⩾ 0.53 eV tric Marcus–Hush: k0 = 0.15 cm s−1, λ ⩾ 0.53 eV, β/λ = 0.55 eV−1.
  • Keywords
    Asymmetric Marcus–Hush theory , Force constant differences , Tetraphenylethylene electro-oxidation , Butler–Volmer model
  • Journal title
    Journal of Electroanalytical Chemistry
  • Serial Year
    2012
  • Journal title
    Journal of Electroanalytical Chemistry
  • Record number

    1676002