DOI QR코드

DOI QR Code

Analysis of wxAmps Results for a New Dye Sensitized Solar Cell using Solid State Electrolyte and Graphene

  • Mahsa Narimani (Nanotechnology Engineering, Aras International campus, University of Tabriz) ;
  • Karim Abbasian (School of Engineering-Emerging Technologies, University of Tabriz) ;
  • Gholamreza Kiani (School of Engineering-Emerging Technologies, University of Tabriz)
  • 투고 : 2024.10.05
  • 발행 : 2024.10.30

초록

A dye-sensitized solar cell (DSSC) with a nanocrystalline TiO2 film electrode on ITO glass, N719 dye, CsSnI3 as solid state electrolyte to solve constancy problems such as electrode corrosion and electrolyte permeation, and counter WO3 electrode, designed and simulated by wxAmps software. As research results has proved, that select graphene as 2D bridges into the nanocrystalline electrodes of dye-sensitized solar cells, which brought a faster electron transport and a lower recombination, together with a higher light scattering3. Compared to 1D nanomaterials and liquid electrolytes using in typical DSSCs, this simulation's results show more excellent properties and energy conversion efficiency (20.7102%).

키워드

참고문헌

  1. Sanghun Lee, Hyunjune Park, Taehee Park, Jongtaek Lee, and Whikun Yi, "Some Features of Dye-sensitized Solar Cell Combining with Single-walled Carbon Nanotubes" 
  2. In Chung, Byunghong Lee, Jiaqing He, Robert P. H. Chang, Mercouri G. Kanatzidis, "All-solid-state dye-sensitized solar cells with high efficiency"
  3. N. Yang, J. Zhai, D. Wang, Y. Chen, L. Jiang, " Two-Dimensional Graphene Bridges Enhanced Photoinduced Charge Transport in Dye-Sensitized Solar Cells"
  4. Samah G. Babiker, Yong Shuai, " Simulation of Organic Solar Cells Using AMPS-1D Program"
  5. Soga, T., (editor), " Nanostructured Materials for Solar Energy Conversion" (Fundamentals of Solar Cell), Elsevier, (2006). 
  6. Liu, Yiming, Yun Sun, and Angus Rockett. "A new simulation software of solar cells-wxAMPS." Solar Energy Materials and Solar Cells 98 (2012): 124-128. 
  7. Koh, J. K., Kim, J., Kim, B., Kim, J. H. & Kim, E. Highly efficient, iodine-free dyesensitized solar cells with solid-state synthesis of conducting polymers. 
  8. Yanagida, S., Yu, Y. H. & Manseki, K. Iodine/iodide-free dye- sensitized solar cells. Acc. Chem. Res. 42, 1827- 1838 (2009). 
  9. Lee, B., Buchholz, D. B., Guo, P. J., Hwang, D. K. & Chang, R. P. H. Optimizing the performance of a plastic dye-sensitized solar cell. J. Phys. Chem. C 115, 9787-9796 (2011). 
  10. Lee, B. et al. Materials, interfaces, and photon confinement in dye-sensitized solar cells. J. Phys. Chem. B 114, 14582-14591 (2010). 
  11. Sefunc, M. A., A. K. Okyay, and H. V. Demir. (2011) . "Plasmonic backcontact grating for P3HT:PCBM organic solar cells enabling strong optical absorption increased in all polarizations." Optics Express 19(15): 14200-14209. 
  12. Xi, Junting, et al. " Growth of single-crystalline rutile TiO2 nanorods on fluorine-doped tin oxide glass for organic-inorganic hybrid solarcells." Journal of Materials Science: Materials in Electronics 23.9 (2012): 1657-1663. 
  13. Liu, Yiming, Yun Sun , and Angus Rockett. " Batch simulation of solar cells by using Matlab and wxAMPS." Photovoltaic Specialists (PVSC), 2012 38 th IEEE. IEEE,2012. 
  14. Mandoc, M. M., L. J. A. Koster, and P . W . M. Blom. "Optimum charge carrier mobility in organic solar cells." Applied physics letters 90.13 (2007): 133504-133504.