Lightman Shlomi, Bin-Nun Moran, Bar Galit, Hurvitz Gilad, Gvishi Raz
Appl Opt. 2022 Feb 20;61(6):1434-1439. doi: 10.1364/AO.450931.
Three-dimensional direct laser writing based on a two-photon polymerization process of hybrid organic-inorganic material was used to print micrometer-scale refractive phase elements that were designed to manipulate incoming Gaussian beams into line and square intensity-flattened profiles. Here we present new results of shaping light beams, enabled by tailoring a two-photon absorption process for printing hybrid material structures based on a fast solgel process. The optical design and calculations of the optical elements are described, along with characterization of their performance in manipulating incoming light beams. The novelty described in this work, to the best of our knowledge, is the implementation of 3D solgel materials as better and improved micro-optics. This new ability provides upgraded 3D high resolution and smooth, printed optical phase structures using tailored hybrids with improved optical and mechanical properties compared to standard common photoresists. This opens new and exciting opportunities for compact and robust beam shaping by reaching glassy material properties and overcoming limitations of organic polymers.
基于混合有机-无机材料双光子聚合过程的三维直接激光写入技术被用于打印微米级折射相位元件,这些元件旨在将入射高斯光束操控成线状和方形强度均匀分布的轮廓。在此,我们展示了光束整形的新成果,这是通过为基于快速溶胶-凝胶过程打印混合材料结构定制双光子吸收过程实现的。文中描述了光学元件的光学设计与计算,以及它们在操控入射光束方面的性能表征。据我们所知,这项工作中描述的新颖之处在于将3D溶胶-凝胶材料用作性能更优的微光学元件。这种新能力利用定制的混合材料提供了升级的3D高分辨率以及光滑的打印光学相位结构,与标准普通光刻胶相比,其光学和机械性能得到了改善。这通过实现玻璃态材料特性并克服有机聚合物的局限性,为紧凑且坚固的光束整形开辟了新的、令人兴奋的机会。