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FLAT LIQUID CRYSTAL DIFFRACTIVE LENSES WITH VARIABLE FOCUS AND MAGNIFICATION

机译:具有可变焦点和放大率的扁平液体晶体衍射透镜

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摘要

Non-mechanical variable lenses are important for creating compact imaging devices. Various methods employing dielectrically actuated lenses, membrane lenses, and liquid crystal lenses were previously proposed [1-4]. In This dissertation the design, fabrication, and characterization of innovative flat tunable-focus liquid crystal diffractive lenses (LCDL) are presented. LCDL employ binary Fresnel zone electrodes fabricated on Indium-Tin-Oxide using conventional micro-photolithography. The light phase can be adjusted by varying the effective refractive index of a nematic liquid crystal sandwiched between the electrodes and a reference substrate. Using a proper voltage distribution across various electrodes the focal length can be changed between several discrete values. Electrodes are shunted such that the correct phase retardation step sequence is achieved. If the number of 2πzone boundaries is increased by a factor of m the focal length is changed from f to f/m based on the digitized Fresnel zone equation: f = rm²/2mλ, where r(m) is mth zone radius, and λ is the wavelength. The chromatic aberration of the diffractive lens is addressed and corrected by adding a variable fluidic lens. These LCDL operate at very low voltage levels (±2.5V ac input), exhibit fast switching times (20-150 ms), can have large apertures (>10 mm), and small form factor, and are robust and insensitive to vibrations, gravity, and capillary effects that limit membrane and dielectrically actuated lenses. Several tests were performed on the LCDL including diffraction efficiency measurement, switching dynamics, and hybrid imaging with a refractive lens. Negative focal lengths are achieved by adjusting the voltages across electrodes. Using these lenses in combination, magnification can be changed and zoom lenses can be formed. These characteristics make LCDL a good candidate for a variety of applications including auto-focus and zoom lenses in compact imaging devices such as camera phones. A business plan centered on this technology was developed as part of the requirements for the minor in entrepreneurship from the Eller College of Management. An industrial analysis is presented in this study that involves product development, marketing, and financial analyses (Appendix I).
机译:非机械可变透镜对于创建紧凑的成像设备很重要。先前已经提出了采用介电驱动透镜,薄膜透镜和液晶透镜的各种方法[1-4]。本文介绍了创新的平面可调焦点液晶衍射透镜(LCDL)的设计,制造和表征。 LCDL使用传统的微光刻技术在铟锡氧化物上制造二元菲涅耳区电极。可以通过改变夹在电极和参考基板之间的向列液晶的有效折射率来调节光相。使用跨各种电极的适当电压分布,可以在几个离散值之间改变焦距。电极被分流,从而获得正确的相位延迟步骤序列。如果2π区域边界的数量增加m倍,则基于数字化的菲涅耳区域方程,焦距从f变为f / m:f =rm²/2mλ,其中r(m)是第m个区域半径,而λ是波长。通过添加可变流体透镜来解决和校正衍射透镜的色差。这些LCDL在非常低的电压电平(±2.5V交流输入)下运行,显示出快速的切换时间(20-150 ms),可以具有较大的孔径(> 10 mm)和较小的尺寸,并且坚固且对振动不敏感,重力和限制薄膜和介电镜片的毛细作用。在LCDL上进行了几项测试,包括衍射效率测量,开关动力学和使用折射透镜的混合成像。负焦距是通过调节电极两端的电压来实现的。结合使用这些镜头,可以改变放大倍率并形成变焦镜头。这些特性使LCDL成为各种应用的理想选择,包括诸如照相手机之类的紧凑型成像设备中的自动聚焦和变焦镜头。埃勒管理学院针对未成年人创业的要求制定了一项以该技术为中心的商业计划。本研究提出了涉及产品开发,市场营销和财务分析的工业分析(附录I)。

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    Valley Pouria;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 en
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