Comparison of Transparent Nickel Doped Cobalt Sulfide and Platinum Counter Electrodes Used in Quasi-Solid State Dye Sensitized Solar Cells
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32804
Comparison of Transparent Nickel Doped Cobalt Sulfide and Platinum Counter Electrodes Used in Quasi-Solid State Dye Sensitized Solar Cells

Authors: Dimitra Sygkridou, Dimitrios Karageorgopoulos, Elias Stathatos, Evangelos Vitoratos

Abstract:

Transparent nickel doped cobalt sulfide was fabricated on a SnO2:F electrode and tested as an efficient electrocatalyst and as an alternative to the expensive platinum counter electrode. In order to investigate how this electrode could affect the electrical characteristics of a dye-sensitized solar cell, we manufactured cells with the same TiO2 photoanode sensitized with dye (N719) and employing the same quasi-solid electrolyte, altering only the counter electrode used. The cells were electrically and electrochemically characterized and it was observed that the ones with the Ni doped CoS2 outperformed the efficiency of the cells with the Pt counter electrode (3.76% and 3.44% respectively). Particularly, the higher efficiency of the cells with the Ni doped CoS2 counter electrode (CE) is mainly because of the enhanced photocurrent density which is attributed to the enhanced electrocatalytic ability of the CE and the low charge transfer resistance at the CE/electrolyte interface.

Keywords: Counter electrodes, dye-sensitized solar cells, quasisolid state electrolyte, transparency.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1107960

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 2213

References:


[1] Z. Tang, J. Wu, M. Zheng, J. Huo, Z. Lan, “A microporous platinum counter electrode used in dye-sensitized solar cells”, Nano Energy, vol. 2, pp. 622-627, September 2013.
[2] G. Veerappan, K. Bojan, S.-W. Rhee, “Sub-micrometer-sized graphite as a conducting and catalytic counter electrode for dye-sensitized solar cells”, ACS Appl. Mater. Interfaces, vol. 3, pp. 857-862, February 2011.
[3] P. K. Singh, U. Singh, B. Bhattacharya, H.-W. Rhee, “Electrochemical synthesis of graphene oxide and its application as counter electrode in dye-sensitized solar cell”, J. of Renewable and Sustainable energy, vol. 6, pp. 013125, January 2014.
[4] H. Choi, H. Kim, S. Hwang, Y. Han, M.Jeon, “Graphene counter electrodes for dye-sensitized solar cells prepared by electrophoretic deposition”, J. Mater. Chem., vol. 21, pp. 7548-7551, April 2011.
[5] S. A. Almohsin, M. Mohammed, Z. Li, M.A. Thomas, K. Y. Wu, J. B. Cui, “Multi-walled carbon nanotubes as a new counter electrode for dyesensitized solar cells”, J. of Nanoscience and Nanotechnology, vol. 12, pp. 2374-2379, March 2012.
[6] H. J. Choi, H. H. Gong, J.-Y. Park, S. C. Hong, “Characteristics of dyesensitized solar cells with surface-modified multi-walled carbon nanotubes as counter electrodes”, J. of Materials Science, vol. 48, pp. 906-912, January 2013.
[7] J.Xia, L. Chen, S. Yanagida, “Application of polypyrrole as a counter electrode for a dye-sensitized solar cell”, J. Mater. Chem., vol. 21, pp. 4644-4649, March 2011.
[8] T. Makris, V. Dracopoulos, T. Stergiopoulos, P. Lianos, “A quasi solidstate dye-sensitized solar cell made of polypyrrole counter electrodes”, Electrochim. Acta, vol. 56, pp. 2004-2008, November 2010.
[9] J. Zhang, T. Hreid, X. Li, W. Guo, L. Wang, X. Shi, H. Su, Z. Yuan, “Nanostructured polyaniline counter electrode for dye-sensitized solar cells: Fabrication and investigation of its electrochemical formation mechanism”, vol. 55, pp. 3664-3668, April 2010.
[10] C.-W. Kung, H.-W. Chen, C.-Y. Lin, K.-C. Huang, R. Vittal, K.-C. Ho, “CoS acicular nanorod arrays for the counter electrode of an efficient dye-sensitized solar cell”, ACS Nano, vol. 6, pp. 7016-7025, July 2012.
[11] S. Srinivasa Rao, C.V.V.M. Gopi, S.-K. Kim, M.-K. Son, M.-S. Jeong, A. Dennyson Savariraj K. Prabakar, H.-J. Kim, “Cobalt sulfide thin film as an efficient counter electrode for dye-sensitized solar cells”, Electroch. Acta, vol. 133, pp. 174-179, April 2014.
[12] J.-Y. Lin, J.-H. Liao and T.-C. Wei, “Honeycomb-like CoS counter electrodes for transparent dye-sensitized solar cells”, Electrochem. Solid-State Lett., vol. 14, pp.D41-D44, February 2011.
[13] M. Wang, A. M. Anghel, B. Marsan, N. L. C. Ha, N. Pootrakulchote, S. M. Zakeeruddin, M. Grätzel, “CoS Supersedes Pt as Efficient electrocatalyst for triiodide reduction in dye-sensitized solar cells”, J. Am. Chem. Soc., vol. 131, pp.15976-15977, October 2009.
[14] H.-J. Kim, C.-W. Kim, D. Punnoose, C. V. V. M. Gopi, S.-K. Kim, K. Prabakar, S. Srinivasa Rao, “Nickel doped cobalt sulfide as a high performance counter electrode for dye-sensitized solar cells”, Applied Surface Science, vol. 328, pp. 78-85, December 2014.
[15] E. Stathatos, P. Lianos, C. Tsakiroglou, “Highly efficient nanocrystalline titania films made from organic/inorganic nanocomposite gels”, Microporous and Mesoporous Materials, vol. 75, pp. 255–260, April 2004.
[16] E. Stathatos, “Organic-inorganic nanocomposite materials prepared by the sol-gel route as new ionic conductors in quasi solid state electrolytes”, Ionics, vol. 11, pp. 140–145, November 2004.
[17] E. Stathatos, P. Lianos, U. L. Stangar, B. Orel, and P. Judeinstein, “Structural study of hybrid organic/inorganic polymer gels using timeresolved fluorescence probing”, Langmuir, vol. 16, pp. 8672–8676, June 2000.
[18] F. Fabregat-Santiago, G. Garcia-Belmonte, I. Mora-Seró, J. Bisquert, “Characterization of nanostructured hybrid and organic solar cells by impedance spectroscopy”, Phys. Chem. Chem. Phys., vol. 13, pp. 9083- 9118, March 2011.
[19] Q. Wang, J.-E. Moser, M. Grätzel, “Electrochemical Impedance Spectroscopic Analysis of Dye-Sensitized Solar Cells”, J. Phys. Chem. B, vol. 109, pp. 14945-14953, July 2005.
[20] E. Barsoukov, J. R. Macdonald, “Impedance Spectroscopy Theory, Experiment, and Applications”, Wiley- Interscience, pp.65, 79, April 2005.