A New Sight towards Dye-sensitized Solar Cells: Material and by Hong Lin PDF

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Additional resources for A New Sight towards Dye-sensitized Solar Cells: Material and Theoretical

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10] H. Tian, L. Hu, C. Zhang, W. Liu, Y. Huang, L. Mo, L. Guo, J. Sheng, S. Dai: J. Phys. Chem. C. Vol. 114 (2010), p. 1627. [11] X. Wang, Y. Yang, Z. Jiang, R. Fan: Eur. J. Inorg. Chem. (2009), p. 3481. [12] T. Ma, T. Kida, M. Akiyama, K. Inoue, S. Tsunematse, K. Yao, H. Noma, E. Abe: Electrochem. Commun. Vol. 5 (2003), p. 369. C. G. Tompkins: J. Appl. Phys. Vol. 72 (1992), p. 3072. C. Fuggle, E. R. Menzel, K. R. Burndle: Solid State Commun. Vol. 27, (1978), p. 65. Z. C. Chou, A. R. K. C. Gujrathi: Thin Solid Films Vol.

It should be pointed out that the cell performance of the porphyrin-sensitized TiO2 cells strongly depends on the sensitization solvents and times, which is in marked contrast with Ru dye-sensitized TiO2 cells. The high cell performance in Ru dye-sensitized TiO2 cells may originate from the robust geometry of ruthenium dyes on the TiO2 through more than two anchoring groups, while the rather flexible geometry of the porphyrin on the TiO2 through the single anchoring group may cause the susceptible cell performance, which is influenced by the porphyrin substituents as well as the sensitization conditions.

Stipkala and G. J. Meyer: Inorg. Chem. Vol. 35 (1996), p. 5319. [9] S. Anderson, E. C. Constable, M. P. Dare-Edwards, J. B. Goodenough, A. Hamnett, K. R. Seddon and R. D. Wright: Nature Vol. 280 (1979), p. 571. [10] (a) A. Fillinger and B. A. Parkinson: J. Electrochem. Soc. Vol. 146 (1999), p. 4559. (b) Y. Lu, D. Choi, J. Nelson, O. Yang and B. A. Parkinson: J. Electrochem. Soc. Vol. 153 (2006), p. E131. (c) A. Vittadini, A. Selloni, F. P. Rotzinger and M. Grätzel: J. Phys. Chem. B Vol. 104 (2000), p.

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A New Sight towards Dye-sensitized Solar Cells: Material and Theoretical by Hong Lin


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