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Péchy, M. Takata, H. Miura, S. Uchida and M. Grätzel: Adv. Mater. Vol. 18 (2006), p. 1202. (d) M. Adachi, Y. Murata, J. Takao, J. Jiu, M. Sakamoto and F. Wang: J. Am. Chem. Soc. Vol. 126 (2004), p. 14943. (e) H. Imahori, S. Hayashi, T. Umeyama, S. Eu, A. Oguro, S. Kang, Y. Matano, T. Shishido, S. Ngamsinlapasathian and S. Yoshikawa: Langmuir Vol. 22 (2006), p. 11405. [5] D. Kuang, P. Wang, S. Ito, S. M. Zakeeruddin and M. Grätzel: J. Am. Chem. Soc. Vol. 128 (2006), p. 7732. [6] (a) Y. Wang, K. -C.

10% and 5% were observed due to the introduction of the N-dped. 1% for the DSC based on N-doped titania ST01 was reached after the optimization. The details will be published in an another paper. Table 1. 2 There was a concern that the visible-light-active titania can possibly accelerate the deterioration of the dye and the electrolyte in the DSC system. 5). The stability of the DSCs based on the N-doped ST-01 (black line) was also tested for 2000 hs under the same condition. 5, no photodegradation was observed for the cell involving the nitrogen-incorporated titania structure.

The light-harvesting properties of TiO2/fused-ZnP-3 at around 400–500 nm and 600–800 nm are remarkably improved compared to those of TiO2/2,4,6-Me considering the solar energy distribution on the earth. 5 conditions (100 mWcm–2) [28]. 6%). The photocurrent action spectra and absorption spectra are virtually similar for TiO2/fused-ZnP-3 and TiO2/2,4,6-Me, implying the involvement of the porphyrins for the photocurrent generation. 5% at 435 nm) is much smaller than that of the 2,4,6-Me cell (76% at 420 nm) (Figure 7).

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