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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/123456789/95215
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dc.contributor.advisor蔡永傑zh_TW
dc.contributor.advisorWing-Kit Choien
dc.contributor.author林晉毅zh_TW
dc.contributor.authorJin-Yi Linen
dc.date.accessioned2024-09-03T16:09:24Z-
dc.date.available2024-09-04-
dc.date.copyright2024-09-03-
dc.date.issued2024-
dc.date.submitted2024-08-09-
dc.identifier.citationReinitzer, F. Beiträge zur Kenntniss des Cholesterins. Monatshefte für Chemie 9, pp. 421–441, 1888.
Lehmann, O.. "Über fliessende Krystalle" Zeitschrift für Physikalische Chemie, vol. 4U, no. 1, pp. 462–472, 1889.
G. Friedel. " Les états mésomorphes de la matière." Ann. Phys., Vol. 9, N°18, pp. 273–474, 1922.
Wu ST. Nematic liquid crystals. Optical Engineering-New York-Marcel Dekker Incorporated. 1994; 47: 1-1
Goodby, John W, Thomas M Leslie. "Smectic liquid crystals", U.S. Patents. (1986);US4613209A
Oswald, Patrick, and Pawel Pieranski."Nematic and cholesteric liquid crystals: concepts and physical properties illustrated by experiments. " CRC press,(2005)
Wu ST. "Birefringence dispersions of liquid crystals". Physical Review A. (1986); 33: 1270
G.Vertogen." Elastic constants and the continuum theory of liquid crystals."Physica A:Statistical Mechanics and its Applications 117.1, pp. 227-231, 1983.
Haiwei Chen, Yating Gao, Shin-Tson Wu." 49.1: Invited Paper: n-FFS vs. p-FFS: Who wins?"SID Symposium Digest of Technica Papers.Vol.46., No.1., 2015.
Dae Hyung Kim, Young Jin Lim, Da Eun Kim, Hongwen Ren, Seon Hong Ahn, Seung Hee Lee." Past, present, and future of fringe-field switching liquid crystal display." Journal of Information Display 15.2, pp. 99-106, 2014.
E.Jakeman, E.P.Raynes." Electro-optic response times in liquid crystals." Physics Letters A39.1, pp. 69-70, 1972.
Shin-Tson Wu and Choi,Wing-Kit." Fast Response Liquid Crystal Mode."U.S. Patent No.7,369,204.6 May(2008)
Kazuo Sekiya and Hajime Nakamura." 51.1: Overdrive Method for Reducing Response Times of Liquid Crystal Displays." SID Symposium Digest of Technical Papers.Vol.32. No.1.Oxford,UK:Blackwell Publishing Ltd, 2001
Wing-Kit Choi, Chih-Wei Hsu, Chia-Hsiang Tung, and Bo-Kai Tseng." Effects of electrode structure and dielectric anisotropy on the performance of VA-FFS LC mode." Optical Express27.23(2019):34343-34358.
Tae-Hoon Choi, Jae-Hyeon Woo, Yeongyu Choi, and Tae-Hoon Yoon. " Effect of two-dimensional confinement on switching of vertically aligned liquid crystals by an in-plane electric field. " Optics Express 24.18, pp. 20993-21000, 2016
Tae-Hoon Choi, Yeongyu Choi, Jae-Hyeon Woo, Seung-Won Oh, and Tae-Hoon Yoon. " Electro-optical characteristics of an in-plane-switching liquid crystal cell with zero rubbing angle: dependence on the electrode structure ."Optics express 24.14(2016):15987-15996
Meizi Jiao, Zhibing Ge, Shin-Tson Wu, and Wing-Kit Choi." Submillisecond response nematic liquid crystal modulators using dual fringe field switching in a vertically aligned cell." Applied Physics Letters92.11(2008):111101
Tae-Hoon Choi, Jae-Hyeon Woo, Yeongyu Choi, and Tae-Hoon Yoon." Interdigitated pixel electrodes with alternating tilts for fast fringe-field switching of liquid crystals." Optics Express 24.24 (2016):27569-27576.
Seung-Won Oh, Ahn-Ki Kim, Byung Wok Park and Tae-Hoon Yoon." Optical compensation methods for the elimination of off-axis light leakage in an in-plane-switching liquid crystal display." Pages 1-10 Journal of Information Display 16.1(2015)
Shi-Rui Chen (2020). Fast Response Parallel-Aligned Fringe Field Switching Liquid Crystal Display with Multi Rubbing Angle. Master thesis, National Taiwan University Graduate Institute of Photonics and Optoelectronics, Taipei.
Tae-Hoon Choi, Seung-Won Oh,Young-Jin Park, Yeongyu Choi and Tae-Hoon Yoon." Fast fringe-field switching of a liquid crystal cell by two-dimensional confinement with virtual walls." Scientific reports :1-9(2016)
Tae-Hoon Choi, Jae-Hyeon Woo, Yeongyu Choi, Seung-Won Oh, Tae-Hoon Yoon." 27-3 2-D Confinement of LCs with Virtual Walls for a Fast Response LCD."SID Symposium Digest of Technical Papers.Vol.48.No.1(2017)
Toshiharu Matsushima, Kenta Seki, Shunichi Kimura, Yasushi Iwakabe, Tatsuya Yata*, Yoshihiro Watanabe, Shinichi Komura, Makoto Uchida, Takashi Nakamura. "Optimal Fast-Response LCD for High-Definition Virtual Reality Head Mounted Display." SID Symposium Digest of Technical Papers.Vol.51.No.1(2018)
Ching-Te Yen (2021). Fast Response Parallel-Aligned Fringe Field Switching Liquid Crystal Display with Negative Dielectric Anisotropy. Master thesis, National Taiwan University Graduate Institute of Photonics and Optoelectronics, Taipei.
Yuan-Chun Chiu (2022). Parallel-Aligned Fringe Field Switching Liquid Crystal Display with 3D Electrode Design. Master thesis, National Taiwan University Graduate Institute of Photonics and Optoelectronics, Taipei.
Shi-Yi You (2023). Negative Parallel-Aligned Fringe Field Switching Liquid Crystal Display with 3D Electrode Design. Master thesis, National Taiwan University Graduate Institute of Photonics and Optoelectronics, Taipei.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95215-
dc.description.abstract本論文延續蔡永傑博士及研究團隊在水平邊緣場效驅動液晶顯示器的研究,透過TechWiz模擬軟體,探討正型及負型液晶材料在三維水平配向邊緣場效驅動顯示器3D PA-FFS中,三維結構間的分子轉動、穿透率與響應時間特性。
本論文沿用邱園竣學長的正型液晶三維樹狀型枝幹電極結構設計,簡化液晶分子複雜的光學配向過程。當施加電壓在此結構時,液晶分子因枝幹電極與共用電極間的電場作用而旋轉,主幹電極在此過程中替代了配向層的功能,使液晶分子有規律地轉動,形成虛擬牆與發光區域。並且探討了不同主幹電極寬度、枝幹電極寬度與間距的匹配,發現不同的三維結構對顯示器的穿透率和響應時間有顯著影響。本論文在結構設計上也從陳世睿學長的論文中獲得啟發,透過設計完成的三維電極結構,將原本堆疊在下層玻璃基板的電極以同樣的方式堆疊於上層玻璃基板下方,形成上下完全對稱的雙層電極結構。經過堆疊後的雙層電極,不僅顯著提升顯示器的穿透率、縮短響應時間,操作電壓也有明顯的改善。
在這篇論文中同樣重要的發現,從游仕毅學長的研究基礎上,將模擬的範圍逐漸縮小至顯示器的最小單位面積,發現比先前模擬更清晰的發光情形與虛擬牆分佈,並得到更連續的光電曲線及更快速的響應時間。
最重要的是,本論文將先前蔡永傑教授發表的VA-DFFS技術,運用在水平配向的雙層電極結構中。此結構採用畫素電極錯位排列的設計,經過改變畫素電極寬度和液晶層厚度後,不僅改善了虛擬牆造成的暗態區域,更大幅地提升了顯示器的穿透率。
本論文透過整合和改進先前的研究,從研究數據中發現經由改善電極結構的設計,可以顯著提升顯示器的穿透率和響應速度,並改善操作電壓。希望這些發現能為液晶顯示技術的發展提供新的思路與參考。
zh_TW
dc.description.abstractThis thesis extends the research of Dr. Wing-Kit Choi and his team on parallel-aligned fringe field switching liquid crystal displays (PA-FFS). Using TechWiz simulation software, it explores the characteristics of molecular rotation, transmittance, and response time in positive and negative liquid crystal materials within 3D structures of PA-FFS displays.
The thesis adopts the 3D electrode structure design for positive LC by Senior Chiu Yuan-Chun, simplifying the complex optical alignment process of LC molecules. When voltage is applied to this structure, the liquid crystal molecules rotate due to the electric field between the branch electrodes and the common electrode. The main electrode (or Trunk electrode) functions like an alignment layer during this process, allowing the liquid crystal molecules to rotate in an orderly manner, forming virtual walls and transmission areas. The paper investigates the matching of different main electrode widths, branch electrode widths and spacing. We found that different 3D structures could significantly affect the display's transmittance and response time.
The structural design of this thesis is also inspired by the thesis of Senior Chen Shi-Rui. By designing a 3D electrode structure, the electrodes originally stacked on the lower glass substrate are similarly stacked below the upper glass substrate, forming a completely symmetrical double-layer electrode structure. The double-layer electrode stacking significantly improves the display's transmittance and shortens the response time, with notable improvements in operating voltage.
Another important finding in this thesis, based on the research of Senior You Shi-Yi, is that by gradually reducing the simulation scope to the smallest unit area of the display, a clearer transmission pattern and virtual wall distribution than previous simulations were observed, yielding more smooth electro-optic curves and faster response times.
Most importantly, this thesis applies the VA-DFFS technology, previously published by Dr. Wing-Kit Choi, to a parallel-aligned dual-electrode structure. This structure uses an arrangement where the upper and lower electrodes are shifted by half the LC layer, it not only helps reduce the dark areas caused by virtual walls but can also significantly enhance the display's transmittance.
This thesis integrates and improves upon previous research, discovering from the data that an improved electrode structure design can significantly enhance the display's transmittance and response speed, while also improving operating voltage and contrast ratio. It is hoped that these findings can help provide new insights and understandings for the development of fast-response liquid crystal display technology.
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dc.description.tableofcontents論文口試委員審定書 ........................................................................................................i
誌 謝 ................................................................................................................................ ii
摘 要 ............................................................................................................................... iii
Abstract .............................................................................................................................iv
目 次 ..............................................................................................................................vi
圖 次 ..............................................................................................................................ix
表 次 ........................................................................................................................... xiii
第一章 液晶簡介 .............................................................................................................. 1
1.1液晶的介紹 .......................................................................................................... 1
1.2液晶的相態 .......................................................................................................... 1
1.3液晶的類型 .......................................................................................................... 2
1.3.1向列型液晶(Nematic) [4] ............................................................................ 2
1.3.2層列型液晶(Smectic) [5] ............................................................................. 3
1.3.3膽固醇型液晶(Cholesteric) [6] .................................................................... 3
1.4液晶的物理性質 .................................................................................................. 4
1.4.1介電異向性 .................................................................................................. 4
1.4.2雙折射特性[1] .............................................................................................. 5
1.4.3方向秩序參數 .............................................................................................. 7
1.4.4連續彈性理論 .............................................................................................. 8
1.4.5黏滯性 .......................................................................................................... 9
1.5液晶顯示器 ........................................................................................................ 10
1.5.1液晶顯示器的構造 .................................................................................... 10
1.5.2液晶顯示器的技術[9] [10] ........................................................................ 11
1.6液晶顯示器的水平驅動模式 ............................................................................ 12
1.6.1平面驅動顯示技術(IPS) ............................................................................ 12
1.6.2邊緣場效驅動顯示技術(FFS) ................................................................... 13
第二章 研究動機與文獻回顧 ........................................................................................ 14
2.1垂直排列的邊緣場效驅動(VA-FFS) ................................................................ 14
2.2垂直排列的雙層邊緣場效驅動(VA-DFFS) ..................................................... 15
2.3水平排列的邊緣場效驅動(PA-FFS) ................................................................. 16
2.4論文研究動機 .................................................................................................... 18
第三章 模擬軟體介紹與實驗架構、參數設定 ............................................................ 19
3.1 TechWiz LCD 模擬軟體介紹 ............................................................................ 19
3.2 實驗設計流程介紹 ............................................................................................ 19
3.2.1 材料參數(Material Data Base) ................................................................... 20
3.2.2 電極結構設計(Structure Design) .............................................................. 20
3.2.3 計算網格生成(Mesh Generation) .............................................................. 23
3.2.4 液晶分析(Liquid Crystal Analysis) ........................................................... 24
3.2.5光學分析(Optical Analysis) ....................................................................... 27
3.3 本論文的材料與參數介紹 ................................................................................ 28
3.3.1液晶材料參數 ............................................................................................ 28
3.3.2絕緣層與玻璃基板材料參數 .................................................................... 28
3.3.3電極材料參數 ............................................................................................ 29
3.3.4偏光片材料參數 ........................................................................................ 29
第四章 模擬結果與數據分析 ........................................................................................ 30
4.1模擬的結構與設計 ............................................................................................ 30
4.1.1原理與結構的設計發想 ............................................................................ 30
4.1.2正型液晶結構的設計原理 ........................................................................ 32
4.1.3負型液晶結構的設計原理 ........................................................................ 34
4.2液晶分子在不同模擬面積的影響 .................................................................... 36
4.2.1負型液晶在不同模擬面積的光電曲線與響應時間 ................................ 38
4.2.2液晶分子在不同模擬面積的結論 ............................................................ 40
4.3水平排列的雙層邊緣場效驅動 ........................................................................ 40
4.3.1水平排列的雙層場效驅動結構與設計 .................................................... 40
4.3.2正型液晶雙層場效驅動的分子轉動 ........................................................ 41
4.3.3正型液晶單層與雙層場效驅動比較 ........................................................ 44
4.3.4負型液晶雙層場效驅動的分子轉動 ........................................................ 46
4.3.5負型液晶單層與雙層場效驅動比較 ........................................................ 48
4.3.6單層場效驅動與雙層場效驅動比較結論 ................................................ 51
4.4正型液晶在不同電極寬度(W)與間距(L)和主幹寬度(T)的影響 .................... 52
4.4.1正型液晶在不同主幹電極寬度(T)的光電曲線與響應時間 ................... 52
4.4.2正型液晶在不同枝幹電極寬度(W)的光電曲線與響應時間 .................. 55
4.4.3正型液晶在不同枝幹電極間距(L)的光電曲線與響應時間 ................... 59
4.4.4正型液晶在不同電極結構之結論 ............................................................ 63
4.5負型液晶在不同電極寬度(W)與間距(L)和主幹寬度(T)的影響 .................... 64
4.5.1負型液晶在不同主幹電極寬度(T)的光電曲線與響應時間 ................... 64
4.5.2負型液晶在不同枝幹電極寬度(W)的光電曲線與響應時間 .................. 66
4.5.3負型液晶在不同枝幹電極間距(L)的光電曲線與響應時間 ................... 69
4.5.4負型液晶在不同電極結構之結論 ............................................................ 71
4.6電極偏移的水平排列雙層邊緣場效驅動 ........................................................ 72
4.6.1電極偏移(W/2)的結構與設計 ................................................................... 72
4.6.2電極偏移(W/2)結構在不同電極寬度(W)的影響 .................................... 73
4.6.3電極偏移(W/2)結構在不同電極寬度(W)的光電曲線與響應時間 ........ 73
4.6.4電極偏移(W/2)結構在不同電極寬度(W)的分子轉動分析 .................... 76
4.6.5電極偏移(W/2)結構在不同液晶層厚度(d)的光電曲線與響應時間 ...... 77
4.6.6電極偏移(W/2)結構在不同液晶層厚度(d)的分子轉動分析 .................. 81
4.6.7電極偏移(W/2)的水平排列雙層邊緣場效驅動之結論 ........................... 83
第五章 模擬研究的結論與未來展望 ............................................................................ 84
參考文獻 ......................................................................................................................... 85
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dc.language.isozh_TW-
dc.subject負型液晶zh_TW
dc.subject電極結構zh_TW
dc.subject快速響應zh_TW
dc.subject虛擬牆zh_TW
dc.subject三維水平配向邊緣場效驅動zh_TW
dc.subject正型液晶zh_TW
dc.subjectvirtual wallen
dc.subject3D parallel-aligned fringe field switchingen
dc.subjectnegative liquid crystalen
dc.subjectpositive liquid crystalen
dc.subjectelectrode structureen
dc.subjectfast responseen
dc.title三維水平配向邊緣場效驅動液晶顯示器在雙層電極結構之模擬研究zh_TW
dc.title3D Parallel-Aligned Fringe Field Switching Liquid Crystal Display with Dual-layer Electrode Structure Designen
dc.typeThesis-
dc.date.schoolyear112-2-
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正型液晶,負型液晶,三維水平配向邊緣場效驅動,虛擬牆,快速響應,電極結構,zh_TW
dc.subject.keywordpositive liquid crystal,negative liquid crystal,3D parallel-aligned fringe field switching,virtual wall,fast response,electrode structure,en
dc.relation.page87-
dc.identifier.doi10.6342/NTU202403741-
dc.rights.note未授權-
dc.date.accepted2024-08-12-
dc.contributor.author-college電機資訊學院-
dc.contributor.author-dept光電工程學研究所-
顯示於系所單位:光電工程學研究所

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