2008 Annual Meeting
(739d) Electrochemical Impedance Spectroscopy of ZnO Nanowire and Nanoparticle Dye Sensitized Solar Cells
In this paper, we will compare electron transport and recombination in DSSCs built with ZnO electrodes employing nanoparticle and nanowire morphologies. Transport, accumulation, and recombination of charge were investigated using electrochemical impedance spectroscopy (EIS). In EIS, the frequency-dependent complex impedance is determined by measuring the current response to an AC voltage perturbation. EIS spectra are plotted in Bode or Nyquist form, and are used to determine an equivalent circuit model. The model describes electronic and ionic processes in different parts of the cell using appropriate circuit elements. For example, ionic diffusion in the electrolyte is modeled using a bounded Warburg impedance, charge transfer at the platinum counterelectrode by an RC circuit, and electron diffusion and recombination in the ZnO electrode by a Warburg impedance in parallel with a capacitance. We will discuss the differences in electron transport observed between nanoparticle and nanowire ZnO DSSCs determined by EIS; as well as how EIS data can be used in conjunction with I-V curve characteristics to determine which fundamental processes limit efficiencies in both cells.