研究生: |
金慧姿 Huei-Tzu Chin |
---|---|
論文名稱: |
錫球接合之2T1C主動式有機發光二極體顯示器製程整合研發 New integrated processes for 2T1C AMOLED by tin balls soldering |
指導教授: |
洪勝富
Sheng-Fu Horng |
口試委員: |
孟心飛
Hsin-Fei Meng 趙宇強 Yu-Chiang Chao 王倫 Lon A. Wang |
學位類別: |
碩士 Master |
系所名稱: |
電機資訊學院 - 電子工程研究所 Institute of Electronics Engineering |
論文出版年: | 2015 |
畢業學年度: | 103 |
語文別: | 中文 |
論文頁數: | 43 |
中文關鍵詞: | 錫球接合 |
外文關鍵詞: | Tin balls soldering |
相關次數: | 點閱:4 下載:0 |
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具高解析度、高反應速度以及輕薄的主動式有機發光二極體顯示器,為未來顯示技術的主流。本論文中,設計小型微米級七段顯示器圖樣,應用於本實驗室所研發之具低成本且高輸出電流密度的垂直式空間電荷限制電晶體(Space-Charge-Limited Transistor,SCLT)與有機發光二極體(OLED),將此兩元件分別製作於不同基板上,並利用微米級的導電錫球,搭配植球製具,精確地將兩個元件焊接接合,完成小型七段顯示器,證實SCLT可作為2T1C AMOLED 中之驅動電晶體。因此,我們亦進行2T1C元件的製程設計,並以本實驗室所研發出之穩定strip-off奈米壓印技術,製作SCLT於軟性基板,透過這些初步的實驗結果,促進未來實現可撓性2T1C主動式有機發光二極體顯示器的概念性產品。
Active-matrix organic light-emitting diodes (AMOLED) which have the characteristics of high-resolution, high response time and light will be a mainstream in display technologies. In this thesis, a micron-size seven-segment display pattern was designed to apply on space-charge-limited transistor (SCLT) and OLED fabrication. Then SCLT and OLED were soldered together by 200μm diameter tin balls to make the micron-size seven-segment display. This shows that SCLT can be the driving transistor in 2T1C AMOLED. Besides, we also designed the process of 2T1C device and made SCLT by stable nanoimprint process on the flexible substrate. With the preliminary result of the experience, the products of flexible 2TIC AMOLED display could be made in the near future.
[1] Y.-C. Chao, H.-F. Meng, and S.-F. Horng,Appl. Phys. Lett., vol. 88, no. 22, p. 223510 (2006).
[2] Y.-C. Chao, H.-F. Meng, S.-F. Horng, and C.-S. Hsu, Organic Electronics, vol. 9, no. 3, pp. 310–316 (2008).
[3] Y.-C. Chao, Y.-C. Lin, M.-Z. Dai, H.-W. Zan, and H.-F. Meng, Appl. Phys. Lett., vol. 95, no. 20, p. 203305(2009).
[4] Y.-C. Chao, H.-K. Tsai, H.-W. Zan, Y.-H. Hsu, H.-F. Meng, and S.-F. Horng, Appl. Phys. Lett., vol. 98, no. 22, p. 223303 (2011).
[5] Y.-C. Chao, M.-C. Ku, W.-W. Tsai, H.-W. Zan, H.-F. Meng, H.-K. Tsai, and S.-F. Horng, Appl. Phys. Lett., vol. 97, no. 22, p. 223307(2010).
[6] H.-W. Zan, Y.-H. Hsu, H.-F. Meng, C.-H. Huang, Y.-T. Tao, and W.-W. Tsai, Appl. Phys. Lett., vol. 101, no. 9, p. 093307(2012).
[7] Y. Fujisaki, Y. Nakajima, T. Takei, H. Fukagawa, T. Yamamoto, and H. Fujikake, IEEE Trans. Electron Devices, vol. 59, no. 12, pp. 3442–3449, (2012).
[8] C.-W. Han, H. K. Kim, H. S. Pang, S.-H. Pieh, C. J. Sung, H. S. Choi, W.-C. Kim, M.-S. Kim, and Y.-H. Tak, J. Display Technol., vol. 5, no. 12, pp. 541–545(2009).
[9] H.-C. Yeh, H.-F. Meng, H.-W. Lin, T.-C. Chao, M.-R. Tseng, and H.-W. Zan, Organic Electronics, vol. 13, no. 5, pp. 914–918,(2012).
[10] Y.-F. Chang, Y.-C. Chiu, H.-C. Yeh, H.-W. Chang, C.-Y. Chen, H.-F. Meng, H.-W. Lin, H.-L. Huang, T.-C. Chao, M.-R. Tseng, H.-W. Zan, and S.-F. Horng, Organic Electronics, vol. 13, no. 10, pp. 2149–2155, (2012).
[11] 工業材料雜誌第288期
[12] S. Pal and A. K. Nandi, J. Appl. Polym. Sci. 101, 3811 (2006).
[13] H. Sirringhaus, P. J. Brown, R. H. Friend, M. M. Nielsen, K. Bechgaard, B. M. W. Langeveld-Voss, A. J. H. Spiering, R. A. J. Janssen, E. W. Meijer, P. Herwig, and D. M. de Leeuw, Nature 401, 685 (1999).
[14] H. Sirringhaus, P. J. Brown, R. H. Friend, M. M. Nielsen, K. Bechgaard, B. M. W. Langeveld-Voss, A. J. H. Spiering, R. A. J. Janssen, and E. W. Meijer, Synthetic Met. 111, 129 (2000).
[15] M. Aryal, K. Trivedi, and W. C. Hu, Acs Nano 3, 3085 (2009).
[16] H. Sirringhaus, R. J. Wilson, R. H. Friend, M. Inbasekaran, W. Wu, E. P. Woo, M. Grell, and D. D. C. Bradley, Appl. Phys. Lett. 77, 406 (2000).
[17] G. Gustafsson, O. Inganas, and S. Stafstrom, Solid State Commun. 76, 203 (1990).
[18] Chiao-Hsiu Chiang, “Fabrication of subwavelength dual structures on silicon substrates with anti-reflection and low sliding angles”, (2010).