Study on the $N_2$ Plasma Treatment of Nanostructured $TiO_2$ Film to Improve the Performance of Dye-sensitized Solar Cell

  • Jo, Seul-Ki (Department of Electrical Engineering, Korea University) ;
  • Roh, Ji-Hyung (Department of Electrical Engineering, Korea University) ;
  • Lee, Kyung-Joo (Department of Electrical Engineering, Korea University) ;
  • Song, Sang-Woo (Department of Electrical Engineering, Korea University) ;
  • Park, Jae-Ho (Department of Electrical Engineering, Korea University) ;
  • Shin, Ju-Hong (Department of Electrical Engineering, Korea University) ;
  • Yer, In-Hyung (Department of Electrical Engineering, Korea University) ;
  • Park, On-Jeon (Department of Electrical Engineering, Korea University) ;
  • Moon, Byung-Moo (Department of Electrical Engineering, Korea University)
  • Published : 2012.02.08

Abstract

Dye sensitized solar cell (DSSC) having high efficiency with low cost was first reported by Gr$\ddot{a}$tzel et al. Many DSSC research groups attempt to enhance energy conversion efficiency by modifying the dye, electrolyte, Pt-coated electrode, and $TiO_2$ films. However, there are still some problems against realization of high-sensitivity DSSC such as the recombination of injected electrons in conduction band and the limited adsorption of dye on $TiO_2$ surface. The surface of $TiO_2$ is very important for improving hydrophilic property and dye adsorption on its surface. In this paper, we report a very efficient method to improve the efficiency and stability of DSSC with nano-structured $TiO_2$. Atmospheric plasma system was utilized for nitrogen plasma treatment on nano-structured $TiO_2$ film. We confirmed that the efficiency of DSSC was significantly dependent on plasma power. Relative in the $TiO_2$ surface change and characteristics after plasma was investigated by various analysis methods. The structure of $TiO_2$ films was examined by X-ray diffraction (XRD). The morphology of $TiO_2$ films was observed using a field emission scanning electron microscope (FE-SEM). The surface elemental composition was determined using X-ray photoelectron spectroscopy (XPS). Each of plasma power differently affected conversion efficiency of DSSC with plasma-treated $TiO_2$ compared to untreated DSSC under AM 1.5 G spectral illumination of $100mWcm^{-2}$.

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