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Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells

Year 2014, Volume: 4 Issue: 3, 665 - 674, 01.09.2014

Abstract

Dye-sensitized solar cells (DSSC) have been extensively studied due to their promising potential for high efficiency, low production cost and eco-friendly production. The photoanode is one of the main components in DSSCs which determines its performance. The main issues facing in DSSCs are the charge recombinations and low light harvesting capacity. Conventional TiO2 nanoparticles with large surface area has low light scattering ability and low electron transport rate while one dimensional nanostructures have high electron transport rate and good light scattering ability but has a low surface area. Different approaches such as nanocomposite, light scattering layer and hierarchical structures to improve performance of 1D DSSCs are discussed. Besides that, works done on the optimization of TiO2 photoanode in cobalt based DSSC is also discussed. Additionally, doping of TiO2 to improve the properties of TiO2 and studies on alternative photoanode materials which involved the application of band gap engineering are discussed to further improve the performance of DSSCs.

References

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Year 2014, Volume: 4 Issue: 3, 665 - 674, 01.09.2014

Abstract

References

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  • S.L. Kim, S.R. Jang, R. Vittal, J. Lee, and K.J. Kim, "Rutile TiO2-modified multi-wall carbon nanotubes in TiO2 film electrodes for dye-sensitized solar cells", Journal of Applied Electrochemistry, vol. 36, pp. 1433-1439, 2006.
  • H. Usui, H. Matsui, N. Tanabe, and S. Yanagida, "Improved dye-sensitized solar cells using ionic nanocomposite Photochemistry and Photobiology A: Chemistry, vol. 164, pp. 97-101, 2004.
  • electrolytes", Journal of
  • M. Saito, and S. Fujihara, "Large photocurrent generation in dye-sensitized ZnO solar cells", Energy & Environmental Science, vol. 1, pp. 280-283, 2008.
  • B. Onwona-Agyeman, S. Kaneko, A. Kumara, M. Okuya, K. Murakami, A. Konno, and K. Tennakone, "Sensitization of nanocrystalline SnO2 films with indoline dyes", Japanese Journal of Applied Physics, Part 2: Letters, vol. 44, pp. L731-L733, 2005.
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  • M. Grätzel, "The advent of mesoscopic injection solar cells", Progress in Photovoltaics: Research and Applications, vol. 14, pp. 429-442, 2006.
  • R. Jose, V. Thavasi, and S. Ramakrishna, "Metal Oxides for Dye-Sensitized Solar Cells", Journal of the American Ceramic Society, vol. 92, pp. 289-301, 2009.
  • M. Grätzel, "Dye-sensitized solar cells", Journal of Photochemistry and Photobiology C: Photochemistry Reviews, vol. 4, pp. 145-153, 2003.
  • H. Minoura, and T. Yoshida, "Electrodeposition of ZnO/dye hybrid thin films for dye-sensitized solar cells", Electrochemistry Tokyo, vol. 76, pp. 109, 2008.
  • B. Tan, E. Toman, Y. Li, and Y. Wu, "Zinc stannate (Zn2SnO4) dye-sensitized solar cells", Journal of the American Chemical Society, vol. 129, pp. 4162-4163, 2007.
  • H. Zheng, Y. Tachibana, and K. Kalantar-Zadeh, "Dye-sensitized solar cells based on WO3", Langmuir, vol. 26, pp. 19148-19152, 2010.
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There are 78 citations in total.

Details

Primary Language English
Journal Section Articles
Authors

Stephanie Chai Tying Lau This is me

Jedol Dayou This is me

Coswald Stephen Sipaut This is me

Rachel Fran Mansa This is me

Publication Date September 1, 2014
Published in Issue Year 2014 Volume: 4 Issue: 3

Cite

APA Lau, S. C. T., Dayou, J., Sipaut, C. S., Mansa, R. F. (2014). Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells. International Journal Of Renewable Energy Research, 4(3), 665-674.
AMA Lau SCT, Dayou J, Sipaut CS, Mansa RF. Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells. International Journal Of Renewable Energy Research. September 2014;4(3):665-674.
Chicago Lau, Stephanie Chai Tying, Jedol Dayou, Coswald Stephen Sipaut, and Rachel Fran Mansa. “Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells”. International Journal Of Renewable Energy Research 4, no. 3 (September 2014): 665-74.
EndNote Lau SCT, Dayou J, Sipaut CS, Mansa RF (September 1, 2014) Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells. International Journal Of Renewable Energy Research 4 3 665–674.
IEEE S. C. T. Lau, J. Dayou, C. S. Sipaut, and R. F. Mansa, “Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells”, International Journal Of Renewable Energy Research, vol. 4, no. 3, pp. 665–674, 2014.
ISNAD Lau, Stephanie Chai Tying et al. “Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells”. International Journal Of Renewable Energy Research 4/3 (September 2014), 665-674.
JAMA Lau SCT, Dayou J, Sipaut CS, Mansa RF. Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells. International Journal Of Renewable Energy Research. 2014;4:665–674.
MLA Lau, Stephanie Chai Tying et al. “Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells”. International Journal Of Renewable Energy Research, vol. 4, no. 3, 2014, pp. 665-74.
Vancouver Lau SCT, Dayou J, Sipaut CS, Mansa RF. Development in Photoanode Materıals for Highly Efficient Dye Sensitized Solar Cells. International Journal Of Renewable Energy Research. 2014;4(3):665-74.