| 研究生: |
許晨筠 HSU,CHEN-YUN |
|---|---|
| 論文名稱: |
設計並合成吡啶基噻吩並咪唑類型之電洞傳輸材料應用於鈣鈦礦太陽能電池 Design and Synthesis of Pyridyl Thieno[3,4-d]imidazole Based Hole-transporting Materials for Perovskite Solar Cell Applications |
| 指導教授: | 李文仁 |
| 口試委員: | |
| 學位類別: |
碩士 Master |
| 系所名稱: |
理學院 - 化學學系 Department of Chemistry |
| 論文出版年: | 2019 |
| 畢業學年度: | 107 |
| 語文別: | 中文 |
| 論文頁數: | 102 |
| 中文關鍵詞: | 吡啶基噻吩並咪唑 、電洞傳輸材料 、鈣鈦礦太陽能電池 |
| 相關次數: | 點閱:8 下載:0 |
| 分享至: |
| 查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報 |
近年來針對鈣鈦礦太陽能電池的研究發展日益重要,其效率快速爬升,製程簡單、成本較低廉等優勢,都使大眾對於日後的發展充滿期待,望能真正成為一種可利用之再生能源。
利用Pyridyl 1H-thieno[3,4-d]imidazole作為核心,設計出CYH系列化合物應用於電洞傳輸層,藉由末端接上相異的推拉電子基以改變化合物的相關性質,期許得以進行相關探討並提高電池元件的效率。
Recently, the progress and study of perovskite solar cell become more and more important. Besides rapid improvement of efficiency, with advantages of easy manufacturing, low cost all make public look forward to the future development of being used as renewable energy.
With pyridyl 1H-thieno[3,4-d]imidazole as core , We design CYH series applying in perovskite solar cells. By attached different electron donating or withdrawing groups to change compounds’ properties, we expect to explore and improve the efficiency of the perovskite solar cell.
1. Hoefler, S. F., Trimmel, G. & Rath, T. Monatsh Chem 2017, 148 (5), 795–826.
2. Kojima, A.; Teshima, K.; Shirai, Y.; Miyasaka, T., J Am Chem Soc 2009, 131 (17), 6050-1.
3. Kim, H. S.; Lee, C. R.; Im, J. H.; Lee, K. B.; Moehl, T.; Marchioro, A.; Moon, S. J.; Humphry-Baker, R.; Yum, J. H.; Moser, J. E.; Gratzel, M.; Park, N. G., Sci Rep 2012, 2, 591.
4. Zhou, D.; Zhou, T.; Tian, Y.; Zhu, X.; Tu, Y., Journal of Nanomaterials 2018, 2018, 1-15.
5. Raza, E.; Aziz, F.; Ahmad, Z., RSC Advances 2018, 8 (37), 20952-20967.
6. Zhuang, Z.; Li, Y.; Qi, D.; Zhao, C.; Na, H., Sensors and Actuators B: Chemical 2017, 242, 801-809.
7. Song, Z.; Watthage, S. C.; Phillips, A. B.; Heben, M. J., Journal of Photonics for Energy 2016, 6 (2).
8. Gheno, A.; Vedraine, S.; Ratier, B.; Bouclé, J., Metals 2016, 6 (1).
9. Agarwala, P.; Kabra, D., Journal of Materials Chemistry A 2017, 5 (4), 1348-1373.
10. Zhang, H.; Wu, Y.; Zhang, W.; Li, E.; Shen, C.; Jiang, H.; Tian, H.; Zhu, W. H., Chem Sci 2018, 9 (27), 5919-5928.
11. Liu, Y.; Chen, Q.; Duan, H.-S.; Zhou, H.; Yang, Y.; Chen, H.; Luo, S.; Song, T.-B.; Dou, L.; Hong, Z.; Yang, Y., Journal of Materials Chemistry A 2015, 3 (22), 11940-11947.
12. Cheng, M.; Aitola, K.; Chen, C.; Zhang, F.; Liu, P.; Sveinbjörnsson, K.; Hua, Y.; Kloo, L.; Boschloo, G.; Sun, L., Nano Energy 2016, 30, 387-397.
13. Xu, B.; Zhang, J.; Hua, Y.; Liu, P.; Wang, L.; Ruan, C.; Li, Y.; Boschloo, G.; Johansson, E. M. J.; Kloo, L.; Hagfeldt, A.; Jen, A. K. Y.; Sun, L., Chem 2017, 2 (5), 676-687.
14. Pham, H. D.; Do, T. T.; Kim, J.; Charbonneau, C.; Manzhos, S.; Feron, K.; Tsoi, W. C.; Durrant, J. R.; Jain, S. M.; Sonar, P., Advanced Energy Materials 2018, 8 (16).
15. Rakstys, K.; Paek, S.; Gao, P.; Gratia, P.; Marszalek, T.; Grancini, G.; Cho, K. T.; Genevicius, K.; Jankauskas, V.; Pisula, W.; Nazeeruddin, M. K., Journal of Materials Chemistry A 2017, 5 (17), 7811-7815.
16. Jeon, N. J.; Na, H.; Jung, E. H.; Yang, T.-Y.; Lee, Y. G.; Kim, G.; Shin, H.-W.; Il Seok, S.; Lee, J.; Seo, J., Nature Energy 2018, 3 (8), 682-689.
17. Li, Z.; Zhu, Z.; Chueh, C. C.; Jo, S. B.; Luo, J.; Jang, S. H.; Jen, A. K., J Am Chem Soc 2016, 138 (36), 11833-9.
18. Karthik, D.; Kumar, V.; Justin Thomas, K. R.; Li, C.-T.; Ho, K.-C., Dyes and Pigments 2016, 129, 60-70.
19. Lee, U. H.; Azmi, R.; Sinaga, S.; Hwang, S.; Eom, S. H.; Kim, T. W.; Yoon, S. C.; Jang, S. Y.; Jung, I. H., ChemSusChem 2017, 10 (19), 3780-3787.
20. Wang, Y.; Zhang, J.; Chen, S.; Zhang, H.; Li, L.; Fu, Z., Journal of Materials Science 2018, 53 (12), 9180-9190.
21. N. K. Noel, A. A., S. D. Stranks, E. S. Parrott,V. M. Burlakov, A. Goriely and H. J. Snaith, ACS Nano 2014, 8 (10), 9815-9821.