新方法的图像化技术使单片微光学元件

J. Wolf, M. Ferstl, A. Voigt, S. Grützner, A. Schleunitz, G. Grützner
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引用次数: 0

摘要

我们提出了一种新的组合模式技术的方法,以制造个性化的微光元件,需要集成系统级光封装,例如将光耦合到片上级波导。所介绍的工作包括将可用的光学聚合物喷墨打印到预图案基板上和紫外线复制的创新组合,这使得定制聚合物混合和双凸微光学组件的制造过程成为可能。为此,光学聚合物InkOrmo或InkEpo的喷墨打印被用作增材制造的点胶技术。油墨被印刷到指定的空腔中,在有图案的衬底上显示出衍射或折射的特征。在紫外线诱导聚合后,固化的组分与软模基材分离。这导致在一个单片组件中的衍射和折射元件或两个凸折射元件的组合。上面的折射部分是由表面能自组织的,其形状随所分配的墨水量而调整,从而可以调节透镜的折射能力。透镜对面的衍射结构或凸形状是通过复制所述预图纹衬底的形状而获得的。这种先进的微光学元件原则上允许更高程度的系统集成,从而通过例如用单个混合透镜代替多透镜系统来进一步实现系统小型化。这种新颖的制造概念旨在经济有效地实现设计要求,使定制的衍射折射透镜易于获得,例如MEMS/MOEMS社区。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel approach of patterning technologies enabling monolithic micro-optical components
We propose a novel approach of combined patterning technologies to manufacture individualized micro-optical components as required for the integration of system-level optical packaging, e.g. for coupling light into on-chip level waveguides. The presented work consists of an innovative combination of inkjet printing of available optical polymers onto a prepatterned substrate and UV-replication which enables the manufacturing processes for tailor-made polymeric hybrid and biconvex micro-optical components. For this, inkjet printing of the optical polymers InkOrmo or InkEpo is used as a dispensing technique for additive manufacturing. The ink is printed into designated cavities on a patterned substrate that shows either diffractive or refractive features. After UV-induced polymerization, the cured component is separated from the soft mold substrate. This results in a combination of either a diffractive and a refractive element or two convex refractive elements in one monolithic component. The refractive part on top is self-organized by the surface energy and the shape is adjusted with the amount of dispensed ink enabling to tune the refractive power of the lens. The diffractive structure or convex shape on the opposite side of the lens is obtained by replicating the shape of the prepatterned substrate. Such advanced micro-optic components allow in principle a higher degree of system integration and thus further system miniaturization by e.g. substituting a multi lens system with a single hybrid lens. This novel manufacturing concept is composed to cost-effectively implement design requirements, making tailor-made diffractive-refractive lenses easily accessible e.g. to the MEMS/MOEMS community.
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