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Novel continuously shaped diffractive optical elements enable high efficiency beam shaping

机译:新型连续成形的衍射光学元件可实现高效光束整形

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LIMO's unique production technology is capable to manufacture free form surfaces on monolithic arrays larger than 250 mm with high precision and reproducibility. Different kinds of intensity distributions with best uniformities or customized profiles have been achieved by using LIMO's refractive optical elements. Recently LIMO pushed the limits of this lens production technology and was able to manufacture first diffractive optical elements (DOEs) based on continuous reliefs profile.Beside for the illumination devices in lithography, DOEs find wide use in optical devices for other technological applications, such as optical communications, laser technologies and data processing. Classic lithographic technologies lead to quantized (step-like) profiles of diffractive micro-reliefs, which cause a decrease of DOE's diffractive efficiency. The newest development of LIMO's microlens fabrication technology allows us to make a step from free programmable microlens profiles to diffractive optical elements with high efficiency. Our first results of this approach are demonstrated in this paper. Diffractive beam splitters with continuous profile are fabricated and investigated. The results of profile measurements and intensity distribution of the diffractive beam splitters are given. The comparison between theoretical simulations and experimental results shows very good correlation.
机译:LIMO独特的生产技术能够在大于250 mm的单片阵列上以高精度和可重复性制造自由形状的表面。通过使用LIMO的折射光学元件,可以实现具有最佳均匀性或自定义轮廓的各种强度分布。最近,LIMO突破了这种镜片生产技术的极限,并能够基于连续浮雕轮廓制造出第一批衍射光学元件(DOE)。 除了光刻中的照明设备外,DOE还广泛用于其他技术应用的光学设备中,例如光学通信,激光技术和数据处理。经典的光刻技术导致衍射微浮雕的量化(阶梯状)轮廓,这会降低DOE的衍射效率。 LIMO微透镜制造技术的最新发展使我们能够从免费的可编程微透镜轮廓到高效的衍射光学元件迈出一步。本文证明了这种方法的第一个结果。制作并研究了具有连续轮廓的衍射分束器。给出了衍射分束器的轮廓测量和强度分布的结果。理论仿真与实验结果之间的比较显示出很好的相关性。

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