화학공학소재연구정보센터
Electrochimica Acta, Vol.53, No.25, 7514-7522, 2008
EIS analysis on low temperature fabrication of TiO2 porous films for dye-sensitized solar cells
A low temperature (< 150 degrees C) fabrication method for preparation of TiO2 porous films with high efficiency in dye-sensitized solar cells (DSSCs) has been developed. The Ti(IV) tetraisopropoxide (TTIP) was added to the paste of TiO2 nanoparticles to interconnect the TiO2 particles. The electrochemical impedance spectroscopy (EIS) technique Was employed to quantify the charge transport resistance at the TiO2/dye/clectrolyte interface (R-et2) and electron lifetime in the TiO2 him (tau(e)) under different molar ratios of TTIP/TiO2 and also at various TiO2 thicknesses. It was found that the R-et2 decreased as the molar ratio increased from 0.02 to 0.08, however, it increased at a molar ratio of 0.2 due to the reduction in surface area for dye adsorption. In addition, the characteristic frequency peak shifted to lower frequency at a molar ratio of 0.08, indicating the longer electron lifetime. As for the thickness effect, TiO2 film with a thickness around 17 mu m achieved the best cell efficiency. EIS study also confirmed that, under illumination, the smallest R-ct2 was associated with a TiO2 thickness of 17 mu m. with the R-et2 increased as the thickness of TiO2 film increased. In the Bode plots. the characteristic frequency peaks shifted to higher frequency when the thickness of TiO, increased from 17.2 to 48.2 mu m, indicating the electron recombination increases as the thickness of the TiO, electrode increases, Finally. to make better use of longer wavelength light, 30 wt% of larger TiO2 particle (300 nm) was mixed with P25 TiO, as light scattering particles. It effectively increased the short-circuit current density and cell conversion efficiency from 7.44 to 8.80 mA cm(-2) and 3.75 to 4.20%, respectively. (c) 2008 Elsevier Ltd. All rights reserved.