Diffractive optics with high Bragg selectivity: volume holographic optical elements in Bayfol® HX photopolymer film

F. Bruder, T. Fäcke, R. Hagen, Dennis Hönel, E. Orselli, C. Rewitz, T. Rölle, G. Walze
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引用次数: 17

Abstract

For a long time volume Holographic Optical Elements (vHOE) have been discussed as an alternative, but were hampered by a lack of suitable materials. They provide several benefits over surface corrugated diffractive optical element like high diffraction efficiency due to their ability to reconstruct a single diffraction order, freedom of optical design by freely setting the replay angles and adjusting their bandwidth by a selection of the vHOE’s thickness. Additional interesting features are related to their high Bragg selectivity providing transparent films for off-Bragg illumination. In this paper we report on our newly developed photopolymer film technology (Bayfol® HX) that uniquely requires no post processing after holographic exposure. We explain the governing non-local polymerization driven diffusion process leading to an active mass transport triggered by constructive interference. Key aspects of the recording process and their impact on index modulation formation is discussed. The influence on photopolymer film thickness on the bandwidth is shown. A comparison between coupled wave theory (CWT) simulation and experimental results is given. There are two basic recording geometries: reflection and transmission vHOEs. We explain consequences of how to record them properly and discuss in more detail the special challenges in transmission hologram recording. Here beam ratio and customization of photopolymer film properties can be applied most beneficially to achieve highest diffraction efficiency.
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具有高布拉格选择性的衍射光学:Bayfol®HX光聚合物薄膜中的体积全息光学元件
长期以来,体积全息光学元件(vHOE)作为一种替代方案被讨论,但由于缺乏合适的材料而受到阻碍。与表面瓦楞衍射光学元件相比,它们具有几个优点,例如由于能够重建单个衍射顺序而具有高衍射效率,通过自由设置重放角度和通过选择vHOE厚度来调整带宽而具有光学设计的自由度。其他有趣的特点是与它们的高布拉格选择性有关,为非布拉格照明提供透明薄膜。在本文中,我们报告了我们新开发的光聚合物薄膜技术(Bayfol®HX),该技术在全息曝光后不需要后处理。我们解释了非局部聚合驱动的扩散过程,导致由建设性干涉触发的主动质量输运。讨论了记录过程的关键方面及其对折射率调制形成的影响。给出了光聚合物薄膜厚度对带宽的影响。给出了耦合波理论(CWT)模拟与实验结果的比较。有两种基本的记录几何形状:反射式和透射式vhoe。我们解释了如何正确记录它们的后果,并更详细地讨论了传输全息图记录中的特殊挑战。在这里,光束比和光聚合物薄膜特性的定制可以最有利地应用于实现最高的衍射效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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