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Modeling of liquid crystal display and photonic devices.

机译:液晶显示器和光子设备的建模。

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摘要

Liquid crystal (LC) materials have been widely applied in electro-optical devices, among which display is the most successful playground and numerous new applications in photonic areas (such as laser beam steering devices) are also emerging. To well guide the device design for optimum performance, accurate modeling is of prior and practical importance. Generally, the modeling of LC devices includes two parts in sequence: accurate LC molecule deformation extraction under external electric fields and optical calculation thereafter for the corresponding electro-optical behaviors. In this dissertation, first, hybrid finite element method and finite difference method are developed to minimize the free energy of the LC systems. In this part of study, with computer-aided derivation, the full forms of the LC free energy equations without any simplification can be obtained. Besides, Galerkin's method and weak form technique are further introduced to successfully degrade the high order nonlinear derivative terms associated with the free energy equations into ones that can be treated by first order interpolation functions for high accuracy. The developed modeling methods for LC deformation are further employed to study display structures, such as 2D and 3D in-plane switching LC cells, and provides accurate results. Followed is the optical modeling using extended Jones matrix and beam propagation method to calculate the electro-optical performances of different devices, according to their amplitude modulation property or diffractive one.The developed methods are further taken to assist the understanding, development, and optimization of the display and photonic devices. For their application in the display area, sunlight readable transflective LCDs for mobile devices and the related optical films for wide viewing angle are developed and studied. New cell structure using vertically aligned liquid crystal mode is developed and studied to obtain a single cell gap, high light efficiency transflective LCD that can be driven by one gray scale control circuit for both transmissive and reflective modes. And employing an internal wire grid polarizer into a fringe field switching cell produces a single cell gap and wide viewing angle display with workable reflective mode under merely two linear polarizers. To solve the limited viewing angle of conventional circular polarizers, Poincare sphere as an effective tool is taken to trace and understand the polarization change of the incident light throughout the whole LC system. This study further guides the design of high performance circular polarizers that can consist of purely uniaxial plates or a combination of uniaxial and biaxial plates. The developed circular polarizers greatly enhance the viewing angle of transflective LCDs. Especially, the circular polarizer design using a biaxial film can even provide comparable wide viewing angle performance for the same vertically aligned cell as it is used between merely two linear polarizers, while using circular polarizers can greatly boost the display brightness.As for the beam steering device modeling, the developed LC deformation method is taken to accurately calculate the associated LC director distribution in the spatial light modulator, while beam propagation method and Fourier transformation technique are combined to calculate the near and far fields from such devices. The modeling helps to better understand the origins and formations of the disclinations associated with the fringe fields, which further result in reduced steering efficiency and output asymmetric polarizations between positive and negative diffractions. Optimization in both voltage profile and driving methods is conducted to well tune the LC deformation under strong fringe fields and improve the light efficiency.
机译:液晶(LC)材料已广泛应用于电光设备中,其中显示器是最成功的游乐场,并且在光子领域(例如激光束转向设备)也出现了许多新应用。为了很好地指导器件设计以获得最佳性能,准确的建模具有先验和实际的重要性。通常,LC设备的建模按顺序包括两个部分:在外部电场下准确进行LC分子变形提取,以及随后针对相应的电光行为进行光学计算。本文首先提出了混合有限元法和有限差分法,以最小化液晶系统的自由能。在这一部分的研究中,通过计算机辅助推导,可以获得LC自由能方程的完整形式,而没有任何简化。此外,还引入了Galerkin方法和弱形式技术,以成功地将与自由能方程关联的高阶非线性导数项分解为可以由一阶插值函数处理的精度高的项。所开发的LC变形建模方法可进一步用于研究显示结构,例如2D和3D平面内切换LC单元,并提供准确的结果。其次是利用扩展琼斯矩阵和光束传播方法进行光学建模,根据器件的振幅调制特性或衍射特性来计算不同器件的电光性能。显示器和光子设备。为了在显示领域中的应用,开发并研究了用于移动设备的阳光可读半透半反式LCD和相关的宽视角光学膜。开发和研究了使用垂直排列的液晶模式的新单元结构,以获得单单元间隙,高光效率的半透射半反射式LCD,该LCD可以由一个灰度控制电路驱动,用于透射和反射模式。并且将内部线栅偏振器应用于边缘场切换单元中,仅在两个线性偏振器下即可产生单个单元间隙和宽广的视角显示,并具有可行的反射模式。为了解决常规圆偏振器的有限视角,采用庞加莱球作为有效工具来跟踪和了解整个LC系统中入射光的偏振变化。这项研究进一步指导了高性能圆偏振器的设计,该偏振器可以由纯粹的单轴板或单轴和双轴板的组合组成。研发出的圆偏振器极大地提高了透反射式LCD的视角。特别是,使用双轴薄膜的圆偏振片设计甚至可以为同一垂直排列的像元提供相称的宽视角性能,因为它仅用于两个线性偏振片之间,而使用圆偏振片则可以极大地提高显示亮度。在设备建模中,采用开发的LC变形方法来精确计算空间光调制器中相关的LC指向矢分布,而光束传播方法和傅里叶变换技术相结合来计算此类设备的近场和远场。该建模有助于更好地了解与边缘场相关的旋错的起源和形成,这进一步导致操纵效率降低,并在正衍射和负衍射之间输出不对称偏振。进行了电压分布和驱动方法的优化,以很好地调整强边缘场下的LC变形并提高光效率。

著录项

  • 作者

    Ge, Zhibing.;

  • 作者单位

    University of Central Florida.;

  • 授予单位 University of Central Florida.;
  • 学科 Engineering Electronics and Electrical.Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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