|
1. 楊素華 蔡泰成,《科學發展》2005年6月,390期,50∼55頁. 2. M. Gratzel, "Powering the planet", Nature 403 (2000) 363. 3. M. Gratzel, "Photoelectrochemical cell", Nature 414 (2001) 338-344. 4. B. O’ Regan, M. Gratzel, Nature, 353, 1991, pp. 737-740. 5. Martin A. Green, Keith Emery, David L. King, Sanekazu Igari and Wilhelm Warta, Prog. Photovolt: Res. Appl. 2003; 11:347–352 6. Yasuo CHIBA, Ashraful ISLAM, Yuki WATANABE, Ryoichi KOMIYA, Naoki KOIDE and Liyuan HAN, Japanese Journal of Applied Physics Vol. 45, No. 25, 2006, pp. L638–L640 7. B. C. Chung, G. F. Virshup, S. Hikido, N. R. Kaminar, Appl. Phys. Lett. 1989,55,1741. 8. M. Green, Proc. 12th EC PVSEC 1994. 9. 簡國明,“奈米二氧化鈦專利地圖級分析”,國科會 10. 高濂, “奈米氧化鈦光催化材料及應用”, 化學工業出版社 11. A. Hagfeldt, M. Gratzel, Chem. Rev. 1995,95,49. 12. Cao F, Oskam G, Meyer G, Searson P, J. Phys. Chem. B 100, 17021–17027 (1996). 13. Solbrand A et al., J. Phys. Chem. B 101, 2514–2518 (1997). 14. Solbrand A et al., J. Phys. Chem. B 103, 1078–1083 (1999). 15. Sommeling P et al., Sol. Energy Mater. Sol. Cells 62, 399–410 (2000). 16. R. Konenkamp, R. Henninger, P. Hoyer, J. Phys. Chem. 1993,97,7328. 17. A. Kay, R. Humphry-Baker, M. Gratzel, J. Phys. Chem. 1994,98,952. 18. P. Bonhote, E. Gogniat, S. Tingry, C. Barbe, N. Vlachopoulos, F. Lenzmann, P. Comte, M. gratzel, J. Phys. Chem. B 1998,102,1498. 19. M. Gratzel, Coord. Chem. Rev. 1991, 111, 167. 20. J. Desilvestro, M. Gratzel, L. Kaven, J. Moser, J. Am, Chem. Soc. 1985, 107, 2988. 21. Lee, W.-J. O., Hi; Wakahara, A; Yoshida, A. Structural and photoelectrochemical characteristics of nanocrystalline ZnO electrode with Eosin-Y. Ceram. Int 32, 495-498 (2006). 22. Kakiuchi, K. H., E; Fujihara,S. J. Photochem. Photobiol. A-Chem 179, 83-86 (2006). 23. Matsui, M. H., Y; Funabiki, K; Jin, Ji-Ye; Yoshida, T; Minoura, H. Synth. Met 148, 147-153 (2005). 24. Keis, K. M., E; Lindstream, H; Lindquist, Sten-Eric; Hagfeldt, A. Sol. Energy Mater. Sol. Cells 73, 51-58 (2002). 25. Kroeze, J. E. S., T. J. Thin Solid Films 451-452, 54-59 (2003). 26. Hara K et al., Sol. Energy Mater. Sol. Cells 64, 115–134 (2000). 27. Equchi K, Koga H, Sekizawa K, Sasaki K, J. Ceram. Soc. Jpn. 108, 1067–1071 (2000). 28. Aegerter, M. A. Sol. Energy Mater. Sol. Cells 68, 401-422 (2001). 29. Burnside S et al., J. Phys. Chem. B 103, 9328–9332 (1999). 30. Lira-Cantu, M. K., F.C. Sol. Energy Mater. Sol. Cells 90, 2076- 2086 (2006). 31. He J, Lindstr‥om H, Hagfeldt A, Lindquist S, J. Phys. Chem. B 103, 8940–8943 (1999). 32. David B. Menzies, Qing Dai , Yi-Bing Cheng, George P. Simon, Leone Spiccia, C. R. Chimie 9 (2006) 713–716 33. Chen, S. G. C., S.; Diamant, Y.; Zaban, A. Chem. Mat. 13, 4629- 4634 (2001). 34. Lee, S. Y. K., J; Sun H, K; Suk J, H; Lee, Jung-Kun; Shin, H,. Sol. Cells 90, 2405-2412 (2006). 35. C. J. Barbe, F. Arendse, P. Comte, M.Jirousek, F. Lenzmann, V. Shkiover, M. Gratzel, J. Am. Ceram. Soc. 1997,80,3157. 36. Hara, K. D.-o., Y.; Kasada, C.; Ohga, Y.; Shinpo, A.; Suga, S.; Sayama, K.; Arakawa, H. Langmuir 20, 4205-4210 (2004). 37. Hara, K. T., Y.; Ohga, Y.; Shinpo, A.; Suga, S.; Sayama, K. Sol. Energy Mater. Sol. Cells 77, 89-103 (2003). 38. Klein, C. N., Md. K.; Liska, P.; Di Censo, D.; Hirata, N.; Palomares, E.; Durrant, J. R.; Gratzel, M,. Inorg. Chem 44, 178-180 (2005). 39. Gratzel, M. Inorg. Chem 44, 6841-6851 (2005). 40. Wang, P. K., C.; Humphry-Baker, R.; Zakeeruddin, S. M.; Gratzel, M. J. Am. Chem. Soc 127, 808-809 (2005). 41. Stergiopoulos, T. A., I.; Kalbac, M; Lukes, I; Falaras, P, . J. Mater. Process. Technol 161, 107-112 (2005). 42. Perera, V. P. S. P., P. K. D. D. P.; Senevirathne, M. K. I.; Tennakone, K. A. , Sol. Energy Mater. Sol. Cells 85, 91-98 (2005). 43. Bandara, J. W., H. Sol. Energy Mater. Sol. Cells 90, 864-871 (2006). 44. Otaka, H. K., M.; Yano, K.; Ito, S.; Mitekura, H.; Kawata, T. J. Photochem. Photobiol. A-Chem 164, 67-73 (2004). 45. Hara, K. H.; Katoh, R.; Singh, L. P.; Sugihara, H.; Sayama, K.; Tachiya, M.; Arakawa, H. J. Phys. Chem. B 106, 374-379 (2002). 46. Hara, K. S., H; Singh, L. P; Islam, A; Katoh, R; Yanagida, M. J. Photochem. Photobiol. A-Chem 145, 117-122 (2001). 47. http://www.nsc.gov.tw/files/popsc/2005_68/50-55.pdf 48. J. Am. Chem. Soc. 1993, 115, 6382-6390 49. J. Am. Chem. Soc. 2001, 123, 1613-1624 50. J. Am. Chem. Soc. 2005, 127: 16835-16847 51. H. Gerischer, Ber. Bunsen-Ges, Phys. Chem. ,1973,77,771. 52. Liu, Y. H., A; Xiao, X-R; Lindquist, S-E,. Sol. Energy Mater. Sol. Cells 55, 267-281 (1998). 53. Kambe, S. N., S.; Kitamura, T.; Wada, Y.; Yanagida, S., J. Phys. Chem. B 106, 2967-2972 (2002). 54. Pelet, S. M., J.-E.; Gratzel, M., J. Phys. Chem. B 104, 1791-1795 (2000). 55. Hara, K. H., T.; Kinoshita, T.; Sayama, K.; Arakawa, H., Sol. Energy Mater. Sol. Cells 70, 151-161 (2001). 56. Huang, S. Y. S., G.; Nozik, A. J.; Gratzel, M.; Frank, A. J,. J. Phys. Chem. B 101, 2576-2582 (1997). 57. Wendy U. Huynh, J. J. D., A. Paul Alivisatos, Science 295, 2425- 2427 (2002). 58. Gebeyehu, D. B., C.J.; Sariciftci, N.S.; Vangeneugden, D.; Kiebooms , R.; Vanderzande, D, Synth. Met 125, 279-287 (2002). 59. Takenobu, T. M., T.; Iwasa, Y.; Mitani, T., Synth. Met 121, 1573- 1574 (2001). 60. U. Bach, D. L., P. Comte, J. E. Moser, J. Salbeck, H. Spreitzer, M. Gratzel, Nature 395, 583-585 (1998). 61. Kumara, G. R. A. K., S.; Okuya, M.; Tennakone, K., Langmuir 18, 10493-10495 (2002). 62. O'Regan, B. S., D. T., Chem. Mat. 10, 1501-1509 (1998). 63. Kubo, W. M., K.; Kitamura, T.; Yoshida, S.; Haruki, M.; Hanabus, K.; Shirai, H.; Wada, Y.; Yanagida, S., J. Phys. Chem. B 105, 12809-12815 (2001). 64. Chatzivasiloglou, E. S., T.; Spyrellis, N.; Falaras, P, J. Mater. Process. Technol 161, 234-240 (2005). 65. Wang, P. Z., S. M.; Comte, P.; Exnar, I.; Gratzel, M., J. Am. Chem. Soc 125, 1166-1167 (2003). 66. A. Zaban et al., J. Phys. Chem. B 107 (2003) 6022-6025. 67. Kiyoaki Imotoa, Kohshin Takahashi, Solar Energy Materials & Solar Cells 79 (2003) 459–469. 68. Takurou N. Murakami, Seigo Ito, Journal of The Electrochemical Society, 153 12A2255-A2261 2006. 69. N.-G. Park, J. van de Lagemaat, and A. J. Frank. J. Phys. Chem. B 2000, 104, 8989-8994 70. S. Nakade, M. Matsuda, S. Kambe, Y. Saito, T. Kitamura, T. Sakata, Y. Wada, H. Mori, and S. Yanagida, J. Phys. Chem. B, 2002, 106, 10004-10010. 71. Henry J. Snaith and Michael Graぴtzel. Physical Review Letters. 98, 177402 (2007) 72. VOGEL R, POHL K, WELLER H. J Phys Chem, 1994,98(12),3 183-3 188. 73. PETER L M, RILEY D J, TULL E J. Chem Commum,2002,10,1 030-1 031. 74. SHEN Q, ARAE D, TOYODA T. Photochemistry and Photobiology A, Chemistry,2004,264,75-80. 75. HOYER P, KONENKAMP R. Appl Phys Lett, 1995,66(3),349-351. 76. CAPOEN B, MARTUCCI A, BOUAZAOUI M. Molecular Structure, 2003,651,467-473. 77. GINGER D S, GREEMHAM N C. Synthetic Metals, 2001,124(1), 117-120. 78. SHEN Q, KATAYAMA K, YAMAGUCHI M, Thin Solid Films, 2005,486,15-19. 79. A.J. Nozik, Physica, E, Low-Dimens. Syst. Nanostruct. 14 (2002) 115. 80. Robert Plass, Serge Pelet, Jessica Krueger, and Michael Gra1tzel. J. Phys. Chem. B, 106 (31), 7578 -7580, 2002. 81. Pingrong Yu, Kai Zhu, Andrew G. Norman, Suzanne Ferrere, Arthur J. Frank, andArthur J. J. Phys. Chem. B 2006, 110, 25451-25454. 82. Niitsoo O, Sarkar SK, Pejoux C. Photochemistry and Photobiology,181,306-313,Jul 31,2006. 83. Qing Shen, Junya Kobayashi, and Taro Toyoda. Appl Phy Lett. 91, 023116,2007. 84. Chi-Hsiu Chang and Yuh-Lang Lee. Appl Phy Lett. 91,053503,2007. 85. 科儀叢書3, 材料電子顯微鏡學, 國科會精儀中心. 86. 汪建民, 杜正恭, 材料分析 中國材料科學學會 1998. 87. http://zh.wikipedia.org/wiki/ 88. http://www.dur.ac.uk/~dph0www5/am1_5.html
|