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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 光電工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/100191
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dc.contributor.advisor蔡永傑zh_TW
dc.contributor.advisorWing-Kit Choien
dc.contributor.author楊智仁zh_TW
dc.contributor.authorZhi-Ren Yangen
dc.date.accessioned2025-09-24T16:48:02Z-
dc.date.available2025-09-25-
dc.date.copyright2025-09-24-
dc.date.issued2025-
dc.date.submitted2025-08-13-
dc.identifier.citationG. Vertogen, "Elastic constants and the continuum theory of liquid crystals," Physica A: Statistical Mechanics and its Applications, vol. 117, no. 1, pp. 227-231, 1983.
S.-T. Wu, "Birefringence dispersions of liquid crystals," Physical Review A, vol. 33, no. 2, p. 1270, 1986.
M. Schadt and W. Helfrich, "Voltage-dependent optical activity of a twisted nematic liquid crystal," Applied Physics Letters, vol. 18, no. 4, pp. 127-128, 1971.
V. G. Chigrinov, Liquid crystal devices: physics and applications. 1999.
C.-L. Ting and W.-F. Huang, "Multi-domain vertical alignment liquid crystal display and driving method thereof," ed: Google Patents, 2005.
K. H. Kim, "Domain divided vertical alignment mode with optimized fringe field effect," ASID 98, 1998.
S. G. Kim et al., "Stabilization of the liquid crystal director in the patterned vertical alignment mode through formation of pretilt angle by reactive mesogen," Applied physics letters, vol. 90, no. 26, 2007.
Y.-J. Lee, Y.-K. Kim, S. I. Jo, J. S. Gwag, C.-J. Yu, and J.-H. Kim, "Surface-controlled patterned vertical alignment mode with reactive mesogen," Optics express, vol. 17, no. 12, pp. 10298-10303, 2009.
M. Oh‐e and K. Kondo, "Electro‐optical characteristics and switching behavior of the in‐plane switching mode," Applied physics letters, vol. 67, no. 26, pp. 3895-3897, 1995.
M. Oh‐e and K. Kondo, "Response mechanism of nematic liquid crystals using the in‐plane switching mode," Applied physics letters, vol. 69, no. 5, pp. 623-625, 1996.
S. Lee, S. Lee, and H. Kim, "Electro-optic characteristics and switching principle of a nematic liquid crystal cell controlled by fringe-field switching," Applied physics letters, vol. 73, no. 20, pp. 2881-2883, 1998.
W. K. Choi and S.-t. Wu, "Fast Response Liquid Crystal Mode," 2011.
W.-K. Choi, C.-W. Hsu, C.-H. Tung, and B.-K. Tseng, "Effects of electrode structure and dielectric anisotropy on the performance of VA-FFS LC mode," Optics express, vol. 27, no. 23, pp. 34343-34358, 2019.
朱崴豪, "改善垂直配向邊緣場效驅動液晶顯示器的虛擬牆穩定性之研究," 碩士學位論文, 光電工程學研究所, 國立臺灣大學, 台北市, 2021.
王子權, "運用新型電極結構提升負型垂直配向邊緣場效驅動液晶之虛擬牆穩定度," 碩士學位論文, 光電工程學研究所, 國立臺灣大學, 台北市, 2023.
張智堯, "垂直配向邊緣場效驅動之負型液晶運用新型電極結構之研究," 碩士學位論文, 光電工程學研究所, 國立臺灣大學, 台北市, 2024. .
楊承祐, "垂直配向邊緣場效驅動液晶顯示器的反應時間之研究," 碩士學位論文, 光電工程學研究所, 國立臺灣大學, 台北市, 2022.
陳俊廷, "負型液晶用於新型電極結構的快速垂直配向邊緣場效驅動液晶顯示器模擬," 碩士學位論文, 光電工程學研究所, 國立臺灣大學, 台北市, 2023.
A. Lien, "Extended Jones matrix representation for the twisted nematic liquid‐crystal display at oblique incidence," Applied physics letters, vol. 57, no. 26, pp. 2767-2769, 1990.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/100191-
dc.description.abstract隨著顯示技術邁向高效率、低功耗發展,液晶顯示器對穿透率、操作電壓與反應時間的要求日益提高。負型液晶垂直配向邊緣場效驅動(VA-FFS)模式雖具良好視角與反應特性,然而傳統3D VA-FFS結構在長時間驅動下,雖能維持良好的穩定性,但其光學穿透率仍偏低,限制其應用效能。
為提升穿透率表現,有研究在3D VA-FFS結構上方引入整片共用電極的3D VA-FFS COM結構,可有效提升穿透率並降低操作電壓,惟此架構於小電極間隙的長時間電壓驅動下會發生嚴重的兩步驟轉動現象,穩定度不佳,且為達到高穿透率,仍需略高的操作電壓,限制其在低功耗應用中的可行性。
為解決上述問題,本研究提出創新之四階堆疊電極結構(4-levlel stacked electrode)。此架構透過堆疊的雙層畫素電極,並且各電極不同輸出電壓,於液晶層中形成多向電場,使液晶分子得以因高壓差而快轉動,在保持低操作電壓的同時,也避免小尺寸電極間隙下不穩定的情況,達到高穿透率與穩定性。
此外,本研究亦導入交錯式結構設計與下層電極尺寸優化,使液晶排列更佳均勻,所提出之交錯式4-level結構在3V操作電壓下即能達成接近90%之穿透率,且回復時間可降低至2ms,展現出優秀的反應時間與穿透率表現。
綜合而言,本研究所提出之四階堆疊電極設計,兼具高穿透率、低操作電壓與穩定液晶響應的優勢,克服VA-FFS COM在穩定性與效能上的限制,為未來高效能液晶顯示器開發提供具潛力之創新電極結構。
zh_TW
dc.description.abstractAs display technology advances toward higher efficiency and lower power consumption, the performance requirements for liquid crystal displays (LCDs) in terms of transmittance, operate voltage, and response time have become increasingly stringent. Although the vertically-aligned fringe-field switching (VA-FFS) mode using negative liquid crystals provides wide viewing angles and favorable response characteristics, the conventional 3D VA-FFS structure still suffers from low optical transmittance under extended driving durations, despite maintaining good stability.
To improve transmittance, previous studies have introduced the 3D VA-FFS COM structure by adding a continuous top common electrode. While this design effectively enhances transmittance and reduces operate voltage, it exhibits severe two-step rotation phenomena and poor stability long-term voltage drive with small electrode gaps. Moreover, achieving high transmittance in this structure still requires a relatively higher operate voltage, which limits its feasibility in low-power applications.
To address these issues, this study proposes an innovative 4-level stacked electrode structure. This design features dual-layer pixel electrodes stacked vertically, each driven by different voltages, generating multi-directional electric fields within the liquid crystal layer. The resulting high field gradient enables rapid molecular rotation while maintaining a low operate voltage, thereby suppressing instability in narrow-gap electrodes and achieving both high transmittance and structural stability.
Furthermore, a staggered structural design along with optimization of the lower electrode dimensions is implemented in this study to improve the uniformity of liquid crystal orientation. The proposed interlaced 4-level structure achieves nearly 90% transmittance at an operate voltage of 3V, with response time reduced to as low as 2 milliseconds, demonstrating excellent optical and dynamic performance.
In summary, the 4-level stacked electrode design developed in this study offers high transmittance, low operate voltage, and stable liquid crystal response, effectively overcoming the limitations of VA-FFS COM structures in terms of performance and stability. It provides a promising structural innovation for future development of high-efficiency LCDs.
en
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dc.description.tableofcontents口試委員會審訂書 i
誌謝 ii
中文摘要 iii
Abstract iv
目次 vi
圖次 ix
表次 xii
第一章 簡介 1
1.1 液晶簡介 1
1.1.1 液晶相態 1
1.1.2 液晶的介電異向性 1
1.1.3 液晶的雙折射性 2
1.2 液晶顯示器技術簡介 3
第二章 文獻回顧與研究動機 6
2.1 二維垂直配向邊緣場效驅動(2D VA-FFS) 6
2.2 三維垂直配向邊緣場效驅動(3D VA-FFS) 7
2.3 3D VA-FFS COM 9
2.4 研究動機 10
第三章 Techwiz介紹與參數設定 12
3.1 模擬軟體Techwiz LCD 3D介紹 12
3.2 參數設定 13
3.3 Techwiz layout 14
3.4 網格設定 16
3.5 電壓設定 17
3.5.1 V-t圖 18
3.5.2 T-t圖 18
3.6 液晶配向參數 20
3.7 光學分析設定 21
第四章 結果與討論 23
4.1 堆疊式結構應用於3D VA-FFS COM 23
4.1.1 小尺寸電極間隙3D VA-FFS COM 23
4.1.2 堆疊式電極結構原理 26
4.1.3 穿透率之分析 27
4.1.4 穩定度與反應時間 28
4.2 下層共用電極的4-level結構 30
4.2.1 結構原理與介紹 30
4.2.2 穿透率之分析 32
4.2.3 穩定度與反應時間 33
4.3 4-level結構 35
4.3.1 結構的原理與介紹 35
4.3.2 穿透率之分析 36
4.3.3 穩定度與反應時間 37
4.3.4 改良版4-level電壓配置 39
4.4 上層電極交錯結構設計 42
4.4.1 結構的原理與介紹 42
4.4.2 穿透率之分析 43
4.4.3 穩定度與反應時間 45
4.5 優化堆疊式結構 46
4.5.1 探討Lm電極層尺寸對於整體效能的影響 46
4.5.2 穿透率之分析 47
4.5.3 穩定度與反應時間 51
第五章 結論與未來展望 54
參考資料 56
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dc.language.isozh_TW-
dc.subject三維電極結構zh_TW
dc.subject四階堆疊式電極zh_TW
dc.subject垂直配向邊緣場驅動zh_TW
dc.subject快速反應時間zh_TW
dc.subject高穿透率zh_TW
dc.subject對應電極zh_TW
dc.subject穩定性zh_TW
dc.subject4-level stacked electrodeen
dc.subjectstabilityen
dc.subjectcomplementary electrodeen
dc.subjecthigh-transmittanceen
dc.subjectfast response timeen
dc.subjectvertically aligned fringe field switchingen
dc.subjectthree-dimensional electrode structureen
dc.title四階堆疊電極於負型液晶垂直配向邊緣場效驅動之設計zh_TW
dc.titleFour-Level Stacked Electrode Structure for Negative Type Liquid Crystal in Vertically-Aligned Fringe-Field Switching Modeen
dc.typeThesis-
dc.date.schoolyear113-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee林晃巖;黃定洧;黃念祖zh_TW
dc.contributor.oralexamcommitteeHoang Yan Lin;Ding-wei Huang;Nien-Tsu Huangen
dc.subject.keyword三維電極結構,四階堆疊式電極,垂直配向邊緣場驅動,快速反應時間,高穿透率,對應電極,穩定性,zh_TW
dc.subject.keywordthree-dimensional electrode structure,4-level stacked electrode,vertically aligned fringe field switching,fast response time,high-transmittance,complementary electrode,stability,en
dc.relation.page57-
dc.identifier.doi10.6342/NTU202504134-
dc.rights.note同意授權(限校園內公開)-
dc.date.accepted2025-08-15-
dc.contributor.author-college電機資訊學院-
dc.contributor.author-dept光電工程學研究所-
dc.date.embargo-lift2030-08-06-
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