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Original Articles

Dye-Sensitized Solar Cells by Fruits

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References

  • Alam, M.M., M.L. Rahman, and M.Z. Haque. 2007. Dye-sensitized solar cells. Bangladesh Journal of Sciences and Industrial Research 42:217 –22.
  • Bach, U. 2006. Dye-Sensitized vs. Thin Film Solar Cells. European Institute for Energy Research, June 30.
  • Bach, U., D. Lupo, P. Comte, J.E. Moser, F. Weissortel, andJ. Salbeck. 1998. Solidstate dye-sensitized mesoporous TiO2 solar cells with high photon-to-electron conversion efficiencies. Nature 395:583 –85.
  • Bauer, C., G. Boschloo, E. Mukhtar, and A. Hagfeldt. 2001. Electron injection and recombination in Ru(dcbpy)2(NCS)2 sensitized nanostructured ZnO. Journal of Phyical Chemistry B 105(24):5585 –88.
  • Bisquert, J., J. Garcia-Canadas, I. Mora-Sero, and E. Palo- mares. 2003. Comparative analysis of photovoltaic principles governing dye-sensitized solar cells and p-n junctions. Proceedings of the SPIE 49 –59.
  • Calogero, G., and G.D. Marco. 2008. Red sicilian orange and purple eggplant fruits as natural sensitizers for dye- sensitized solar cells. Solar Energy Material Solar Cell 92(11):1341 –46.
  • Caramori, S., V. Cristino, R. Boaretto, R. Argazzi, C.A. Bignozzi, and A.D. Carlo. 2010. New components for dye-sensitized solar cells. International Journal of Photoenergy 2010 (Article).
  • Chukwu, O.O.C., C.E. Odu, D. Chukwu, N. Hafiz, V.N. Chidozie, and I.A. Onyimba. 2011. Dyes as sensitizers for Solar Cell. African Journal of Microbiology Research 5:3351 –56.
  • Frank, A.J., N. Kopidakis, and J. Van de Lagemaat. 2004. Electrons in nanostructured TiO2 solar cells: Transport, recombination and photovoltaic properties. Coordination Chemistry Review 248:1165 –79.
  • Green, A.N.M., E. Palomares, S.A. Haque, J.M. Kroon, and J.R. Durrant. 2005. Charge transport versus recombination in dye-sensitized solar cells employing nanocrystalline TiO2 and SnO2 films. Journal of Physical Chemistry B 109:12525 –533.
  • Gratzel, M. 2003. Dye-sensitized solar cell. Journal of Photochemistry and Photobiology C: Photochemistry Reviews 4(2):145 –53.
  • Hara, K., Y. Dan-Oh, C. Kasada, and H. Arakawa. 2004. Effects of additives on the photovoltaic performance of Cou- marin-Dye-Sensitized nanocrystalline TiO solar cells. Langmuir 20(10):4205 –10.
  • Haiying, W. 2005. Dye Sensitized Solar Cells, University of Alabama Department of Chemistry, M.Tech thesis, 3
  • Hernández-Martínez, A.R., M. Estevez, S. Vargas, F. Quintanilla, andR. Rodríguez. 2012. Natural pigment-based dye-sensitized solar cells. International Congress on Instrumentation and Applied Science. 10.
  • Hamadanianab, M., and V. Jabbari. 2012. Improved conversion efficiency in dye-sensitized solar cells based on electrospun TiCl4-treated TiO2 nanorod electrodes. International Journal of Green Energy, doi:10.1080/15435075.2012.674080.
  • Ito, S., S.M. Zakeeruddin, R. Humphry-Baker, P. Liska, R. Charvet, P. Comte, M.K. Nazeeruddin, P. Pechy, M. Takata, H. Miura, S. Uchida, and M. Gratzel. 2006. High efficiency organic-dye-sensitized solar cells controlled by nanocrystalline TiO2 electrode thickness. Advanced Matererials 18(9):1202 –05.
  • Ito, S., T.N. Murakami, P. Comte, P. Liska, C. Gratzel, M.K. Nazeeruddin, and M. Gratzel. 2008. Fabrication of thin film dye sensitized solar cells with solar to electric power conversion efficiency over 10%. Thin Solid Films 516:4613 –19.
  • Kay, A., R. Humphry-Baker, and M. Gratzel. 1994. Artificial photosynthesis to investigations on the mechanism of photosensitization of nanocrystalline TiO2 solar cells by chlorophyll derivatives. Journal of Physical Chemistry 98:952 –59.
  • Kim, S., J.K. Lee, S.O. Kang, J.J. Ko, J.H. Yum, S. Fantacci, F. De Angelis, D. Di Censo, M.K. Nazeeruddin, and M. Gratzel. 2006. Molecular engineering of organic sen- sitizers for solar cell applications. Journal of American Chemical Society 128(51):16701 –07.
  • Kumar, D.K., F.P. Xavier, and J.M. Shyla. 2012. Natural dye sensitization of TiO2 thin films using lawsone dye extracted from lawsonia inermis for solar cell applications. Archives of Applied Science Research 4:2122 –32.
  • Kroon, J.M., N.J. Bakker, and H.J.P. Smit. 2007. Nanocrystalline dye-sensitized solar cells having maximum performance. Progress in Photovoltaics 15:1 –18.
  • Meng, S., J. Ren, and E. Kaxiras. 2008. Natural dyes adsorbed on TiO2 nanowire for photovoltaic applications: Enhanced light absorption and ultrafast electron injection. Nano Letter 8:3266 –72.
  • Nazeeruddin, M.K., P. Pechy, T. Renouard, S.M. Zakeeruddin, R. Humphry-Baker, P. Comte, P. Liska, L. Cevey, E. Costa, V. Shklover, L. Spiccia, G.B. Deacon, C.A. Bignozzi, and M. Gratzel. 2001. Engineering of efficient panchromatic sensitizers for nanocrystalline TiO2-based solar cells. Journal of the American Chemical Society 123(8):1613 –24.
  • Quintana, M., T. Edvinsson, A. Hagfeldt, and G.J. Boschloo. 2007. Comparison of dye-sensitized ZnO and TiO2 solar cells: Studies of charge transport and carrier lifetime. Journal of Physical Chemistry C 111(2):1035 –41.
  • Regan, B.O., and M. Gratzel. 1991. A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 films. Nature 353:737 –40.
  • Ribeiroa, H.A., P.M. Sommelingb, J.M. Kroonb, A. Mendesa, and C.A.V. Costa. 2009. Dye-sensitized solar cells: Novel concepts, materials, and state-of-the-art performances. International Journal of Green Energy 6(3):245 –56.
  • Smestad, G. 1998. Solar energy materials. Solar Cells 1998; 55:157 –78.
  • Tributsch, H. 2004. Dye sensitization solar cells: A critical assessment of the learning curve. Coordination Chemistry Reviews 248:1511–30.
  • Taya1, S.A., T.M. El-Agez, H.S. El-Ghamri, and M.S. Abdel-Latif. 2013. Dye-sensitized solar cells using fresh and dried natural dyes. International Journal of Materials Science and Application 2(2):37 –42.
  • Tennakone, K., G.R.R.A. Kumara, A.R. Kumarasinghe, P.M. Sirimanne, and K.G.U. Wijayantha. 1996. Efficient photosensitization of nanocrystalline TiO2 films by tannins and related phenolic substances. Journal of Photochemistry & Photobiology A: Chemistry 94(2–3):217 –20.
  • Wang, W.L., H. Lin, and J.B. Li. 2008. Formation of titania nanoarrays by hydrothermal reaction and their application in photovoltaic cells. Journal of American Ceramic Society 91:628 –31.
  • Yamazaki, E., M. Murayama, N. Nishikawa, N. Hashimot, M. Shoyama, and O. Kurita. 2007. Utilization of natural carotenoids as photo sensitizers for dye-sensitized solar cells. Solar Energy 18:512 –16.
  • Zhou, H., Lu. Wu, Y. Ga, and T. Ma. 2011. Dye-sensitized solar cells using 20 natural dyes as sensitizers. Journal of Photochemistry and Photobiology A: Chemistry 219:188 –94.
  • Zhang, D., S.M. Lanier, J.A. Downing, J.L. Avent, J. Lumc, and J.L. McHale. 2008. Betalain pigments for dye-sensitized solar cells. Journal of Photochemistry Photo-Biology A: Chemistry 195(1):72 –80.
  • Zhua, H., G. Huanga, and X. Ruan. 2012. Stability of dye sensitized solar cells with counter electrode on nickel plated stainless steel substrates. International Journal of Green Energy, doi:10.1080/15435075.2011.653844
  • Zhu, H., H. Zeng, V. Subramanian, C. Masarapu, K.H. Hung, and B. Wei. 2008. Anthocyanin-sensitized solar cells using carbon nanotube films as counter electrodes. Nanotechnology 19(46).

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