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Studies on optical and electro-optical wave mixing phenomena in liquid crystal films.

机译:研究液晶薄膜中的光波和电光波混合现象。

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摘要

A detailed analysis of the intensity dependent nonlinearity in doped liquid crystalline materials and its wave mixing effects is presented. The nonlinearity arises from the formation of space charge fields within the material. These space charge fields come from two main sources. First the formation, and subsequent dissociation, of charge transfer complexes between the liquid crystal and the dopant produce free charge carriers, which drift and diffuse to form a space charge field. Second, an applied field may reinforce these fields through the Carr-Helfrich effect, which states that when an electric field is applied to a medium with anisotropic conductivity and permittivity local transverse field components will be present. These fields, plus any flows within the material, will produce torques on the liquid crystal molecules that locally realign the uniaxial liquid crystal molecules producing a modulation of the index of refraction. The resulting nonlinearity is extremely large and may be used for wave mixing within the material.; The behavior of the wave mixing is studied for a variety of different liquid crystals and dopants. Theoretical models derived to describe the nonlinear process are substantiated with experimental results. Also, experiments to examine the various aspects of the wave-mixing phenomena including time response, beam amplification, and wavelength dependence are documented. It is also shown that persistent recordings may be formed in the material provided the participating field strengths are large enough. Optimum values for dimensions, wavelength, and other parameters that maximize the nonlinearity are obtained. Finally preliminary experiments on applications resulting from the large nonlinearity are presented. These applications include optical limiting, spatial light modulation, and incoherent to coherent optical conversion.
机译:详细分析了掺杂液晶材料中强度相关的非线性及其波混效应。非线性是由材料内空间电荷场的形成引起的。这些空间电荷场来自两个主要来源。首先,液晶和掺杂剂之间的电荷转移络合物的形成以及随后的离解产生了自由电荷载流子,该自由载流子漂移并扩散以形成空间电荷场。其次,外加电场可通过卡尔·赫尔夫里希效应来增强这些电场,该效应表明,当将电场施加到具有各向异性电导率和介电常数的介质时,将出现局部横向电场分量。这些场,加上材料内的任何流动,都会在液晶分子上产生扭矩,从而使单轴液晶分子局部重新排列,从而产生折射率的调制。所产生的非线性非常大,可用于材料内的波混合。对于多种不同的液晶和掺杂剂,研究了波混合的行为。通过实验结果证实了用来描述非线性过程的理论模型。此外,记录了检查波混频现象各个方面的实验,包括时间响应,光束放大和波长依赖性。还表明,只要参与场强足够大,就可以在材料中形成永久记录。获得了使非线性最大化的尺寸,波长和其他参数的最佳值。最后,给出了由大非线性产生的应用的初步实验。这些应用包括光学限制,空间光调制以及非相干到相干光学转换。

著录项

  • 作者

    Guenther, Brett Dean.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Electronics and Electrical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;工程材料学;
  • 关键词

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