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Multilevel Micro-Structuring of Glassy Carbon for Precision Glass Molding of Diffractive Optical Elements

机译:玻璃碳的多级微结构用于衍射光学元件的精密玻璃成型

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A consumer market for diffractive optical elements in glass can only be created if high efficient elements are available at affordable prices. In diffractive optics the efficiency and optical properties increases with the number of levels used, but in the same way the costs are multiplied by the number if fabrication steps. Replication of multilevel diffractive optical elements in glass would allow cost efficient fabrication but a suitable mold material is needed. Glassy carbon shows a high mechanical strength, thermal stability and non-sticking adhesion properties, which makes it an excellent candidate as mold material for precision compression molding of low and high glass-transition temperature materials. We introduce an 8 level micro structuring process for glassy carbon molds with standard photolithography and a Ti layer as hard mask for reactive ion etching. The molds were applied to thermal imprinting onto low and high transition temperature glass. Optical performance was tested for the molded samples with different designs for laser beamsplitters. The results show a good agreement to the design specification. Our result allow us to show limitations of our fabrication technique and we discussed the suitability of precision glass molding for cost efficient mass production with a high quality.
机译:玻璃中的衍射光学元件的消费市场只有在可以以可承受的价格获得高效元件的情况下才能建立。在衍射光学中,效率和光学特性随所使用的水平数量而增加,但是以相同的方式,如果制造步骤,则成本乘以数量。在玻璃中复制多级衍射光学元件将允许具有成本效益的制造,但是需要合适的模具材料。玻碳具有很高的机械强度,热稳定性和不粘粘附性,这使其成为用于低和高玻璃化转变温度材料的精密压缩成型的模具材料的极佳选择。我们介绍了采用标准光刻技术的玻璃碳模具的8级微结构化工艺以及以Ti层作为反应离子蚀刻的硬掩模。将该模具用于在低和高转变温度的玻璃上热压印。测试了具有不同设计的激光分束器的模制样品的光学性能。结果表明与设计规范有很好的一致性。我们的结果使我们能够显示出制造技术的局限性,并讨论了精密玻璃模制对于高质量,高成本效益的批量生产的适用性。

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