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Tunable liquid crystal photonic devices.

机译:可调谐液晶光子器件。

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摘要

Liquid crystal (LC)-based adaptive optics are important for information processing, optical interconnections, photonics, integrated optics, and optical communications due to their tunable optical properties. In this dissertation, we describe novel liquid crystal photonic devices.; In Chap. 3, we demonstrate a novel electrically tunable-efficiency Fresnel lens which is devised for the first time using nanoscale PDLC. The tunable Fresnel lens is very desirable to eliminate the need of external spatial light modulator. The nanoscale LC devices are polarization independent and exhibit a fast response time. Because of the small droplet sizes, the operating voltage is higher than 100 Vrms.; To lower the driving voltage, in Chap. 2 and Chap. 3, we have investigated tunable Fresnel lens using polymer-network liquid crystal (PNLC) and phase-separated composite film (PSCOF). The operating voltage is below 12 Vrms. The PNLC and PSCOF devices are polarization dependent. To overcome this shortcoming, stacking two cells with orthogonal alignment directions is a possibility. Using PNLC, we also demonstrated LC blazed grating. The diffraction efficiency of these devices is continuously controlled by the electric field.; We also develop a system with continuously tunable focal length. A conventional mechanical zooming system is bulky and power hungry. In Chap. 4, we developed an electrically tunable-focus flat LC spherical lens and microlens array. A huge tunable range from 0.6 m to infinity is achieved by the applied voltage.; In Chap. 5, we describe a LC microlens array whose focal length can be switched from positive to negative by the applied voltage. The fast response time feature of our LC microlens array will be very helpful in developing 3-D animated images.; In Chap. 6, we demonstrate polymer network liquid crystals for switchable polarizers and optical shutters. The use of dual-frequency liquid crystal and special driving scheme leads to a sub-millisecond response time.; In Chap. 7, for the first time, we demonstrate a fast-response and scattering-free homogeneously-aligned PNLC light modulator. The PNLC response time is ∼300x faster than that of a pure LC mixture. The PNLC cell also holds promise for mid and long infrared applications where response time is a critical issue.
机译:基于液晶(LC)的自适应光学器件因其可调的光学特性,对于信息处理,光学互连,光子学,集成光学器件和光学通信非常重要。本文介绍了新型的液晶光子器件。在第一章。参见图3,我们展示了一种新颖的电可调效率菲涅耳透镜,它是首次使用纳米级PDLC设计的。菲涅耳可调透镜非常需要消除外部空间光调制器的需要。纳米级LC器件是偏振无关的,并具有快速的响应时间。由于液滴尺寸小,工作电压高于100 Vrms。要降低驱动电压,请参见第1章。 2和第一章。参见图3,我们研究了使用聚合物网络液晶(PNLC)和相分离复合膜(PSCOF)的可调节菲涅耳透镜。工作电压低于12 Vrms。 PNLC和PSCOF器件与偏振有关。为了克服该缺点,可以堆叠具有正交对准方向的两个单元。使用PNLC,我们还演示了LC闪耀光栅。这些装置的衍射效率由电场连续控制。我们还开发了焦距连续可调的系统。传统的机械变焦系统笨重且耗电。在第一章。参照图4,我们开发了一种电可调焦平面LC球面透镜和微透镜阵列。所施加的电压可实现从0.6 m到无穷大的可调范围。在第一章。参照图5,我们描述了一种LC微透镜阵列,它的焦距可以通过施加的电压从正转换为负。我们的LC微透镜阵列的快速响应时间功能将对开发3D动画图像非常有帮助。在第一章。参见图6,我们展示了用于可切换偏振片和光学快门的聚合物网络液晶。双频液晶和特殊的驱动方案的使用导致亚毫秒级的响应时间。在第一章。参见图7,我们首次展示了一种快速响应且无散射的均匀对准PNLC光调制器。 PNLC的响应时间比纯LC混合物快约300倍。 PNLC电池还有望用于中,远红外应用,在这些应用中,响应时间是一个关键问题。

著录项

  • 作者

    Fan, Yun-Hsing.;

  • 作者单位

    University of Central Florida.;

  • 授予单位 University of Central Florida.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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