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High-speed Imaging of Spatiotemporal Liquid Crystal Switching Dynamics.

机译:时空液晶开关动力学的高速成像。

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摘要

Liquid crystals (LCs) are widely used for light modulation in industrial and commercial applications including device display technologies and optical switches for telecommunications. The elongation of LC molecules and their alignment to applied electric fields confers their unique electro-optical properties. However, their temporal response or `switching speed' due to an applied electric field is the primary limitation governing the overall performance of LC devices. To engineer better LC materials and faster devices, detailed knowledge of complex electrodynamic phenomena in LCs is required, yet no diagnostic methods are currently available to characterize fast temporal dynamics with high spatial resolution. In an effort to mediate this gap between instrumentation and LC physics, we have developed a technique based on high-speed imaging and polarization microscopy, which is used to characterize the spatiotemporal dynamics of LC switching on millisecond time scales with micron spatial resolution. To demonstrate the efficacy of this high-speed imaging method, we characterize the switching time scale for a standard Freedericksz cell as a function of the applied voltage. As a second industrially-relevant LC device geometry, we microfabricated an in-plane switching device that generates a highly non-uniform electric field, enabling us to measure spatial variations in switching speed within a single micro-scale device. Experimental results were compared with theoretical models to benchmark results, and also to quantitatively determine the LC switching dynamics from processed digital high-speed videos.
机译:液晶(LC)广泛用于工业和商业应用中的光调制,包括设备显示技术和电信用光开关。 LC分子的伸长及其与外加电场的取向赋予其独特的电光特性。但是,由于施加电场而引起的时间响应或“开关速度”是控制LC器件整体性能的主要限制。为了设计更好的LC材料和更快的设备,需要详细了解LC中的复杂电动力学现象,但是目前尚无诊断方法可用来表征具有高空间分辨率的快速时间动态。为了解决仪器与LC物理之间的差距,我们开发了一种基于高速成像和偏振显微镜的技术,该技术用于表征以微米级空间分辨率在毫秒级时间尺度上切换LC的时空动态。为了证明这种高速成像方法的功效,我们将标准Freedericksz电池的开关时间标度表征为施加电压的函数。作为与工业相关的第二种LC设备几何形状,我们微制造了一个平面内开关设备,该设备会产生高度不均匀的电场,从而使我们能够测量单个微型设备内开关速度的空间变化。将实验结果与理论模型进行比较,以得出基准测试结果,并从处理后的数字高速视频中定量确定LC切换动态。

著录项

  • 作者

    Jin, Yang.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Materials science.;Engineering.
  • 学位 M.S.
  • 年度 2015
  • 页码 62 p.
  • 总页数 62
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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