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Tailorable, 3D microfabrication for photonic applications: Two-polymer microtransfer molding

机译:可定制的3D微加工,用于光子应用:两聚合物微传递模塑

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For photonic devices, extending beyond the planar regime to the third dimension can allow a higher degree of integration and novel functionalities for applications such as photonic crystals and integrated optical circuits. Although conventional photolithography can achieve both high quality and structural control, it is still costly and slow for three-dimensional (3D) fabrication. Moreover, as diverse functional polymers emerge, there is potential to develop new techniques for quick and economical fabrication of 3D structures. We present a 3D microfabrication technique based on the soft lithographic technique, called two-polymer microtransfer molding (2P-μTM) to accomplish low cost, high structural fidelity and tailorable 3D microfabrication for polymers. Using 2P-μTM, highly layered polymeric microstructures are achievable by stacking planar structures layer by layer. For increased processing control, the surface chemistry of the polymers is characterized as a function of changing ultraviolet dosage to optimize yield in layer transfer. We discuss the application of the 2P-μTM to build polymer templates for woodpile photonic crystals, and demonstrate methods for converting the polymer templates to dielectric and metallic photonic crystal structures. Finally, we will show that 2P-μTM is promising for fabricating 3D polymeric optical waveguides.
机译:对于光子器件,从平面范围扩展到三维可以允许更高的集成度和新颖的功能,以用于诸如光子晶体和集成光电路之类的应用。尽管常规光刻可以同时实现高质量和结构控制,但是对于三维(3D)制造而言,它仍然昂贵且缓慢。而且,随着各种功能聚合物的出现,有可能开发新技术来快速,经济地制造3D结构。我们提出一种基于软光刻技术的3D微加工技术,称为二聚合物微传递模塑(2P-μTM),以实现低成本,高结构保真度和可定制的3D聚合物微加工。使用2P-μTM,可以通过一层一层地堆叠平面结构来实现高度分层的聚合物微结构。为了增加加工控制,将聚合物的表面化学性质表征为改变紫外线剂量以优化层转移产率的函数。我们讨论了2P-μTM在构建木桩光子晶体的聚合物模板中的应用,并演示了将聚合物模板转换为介电和金属光子晶体结构的方法。最后,我们将证明2P-μTM在制造3D聚合物光波导方面很有前途。

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