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Optical coupling of bare optoelectronic components and flexographically printed polymer waveguides in planar optronic systems

机译:平面光电系统中裸光电元件和柔性版印刷聚合物波导的光耦合

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摘要

Large scale, planar optronic systems allowing spatially distributed functionalities can be well used in diverse sensor networks, such as for monitoring the environment by measuring various physical quantities in medicine or aeronautics. In these systems, mechanically flexible and optically transparent polymeric foils, e.g. polymethyl methacrylate (PMMA) and polyethylene terephthalate (PET), are employed as carrier materials. A benefit of using these materials is their low cost. The optical interconnections from light sources to light transmission structures in planar optronic systems occupy a pivotal position for the sensing functions. As light sources, we employ the optoelectronic components, such as edgeemitting laser diodes, in form of bare chips, since their extremely small structures facilitate a high integration compactness and ensure sufficient system flexibility. Flexographically printed polymer optical waveguides are deployed as light guiding structures for short-distance communication in planar optronic systems. Printing processes are utilized for this generation of waveguides to achieve a cost-efficient large scale and high-throughput production. In order to attain a high-functional optronic system for sensing applications, one of the most essential prerequisites is the high coupling efficiency between the light sources and the waveguides. Therefore, in this work, we focus on the multimode polymer waveguide with a parabolic cross-section and investigate its optical coupling with the bare laser diode. We establish the geometrical model of the alignment based on the previous works on the optodic bonding of bare laser diodes and the fabrication process of polymer waveguides with consideration of various parameters, such as the beam profile of the laser diode, the employed polymer properties of the waveguides as well as the carrier substrates etc. Accordingly, the optical coupling of the bare laser diodes and the polymer waveguides was simulated. Additionally, we demonstrate optical links by adopting the aforementioned processes used for defining the simulation. We verify the feasibility of the developed processes for planar optronic systems by using an active alignment and conduct discussions for further improvements of optical alignment. © 2016 SPIE.
机译:允许在空间上分布功能的大规模平面光电系统可以很好地用于各种传感器网络中,例如通过测量医学或航空学中的各种物理量来监视环境。在这些系统中,机械挠性和光学透明的聚合物箔,例如,铝箔,和铝箔。聚甲基丙烯酸甲酯(PMMA)和聚对苯二甲酸乙二醇酯(PET)被用作载体材料。使用这些材料的好处是它们的低成本。平面光电系统中从光源到光传输结构的光学互连在传感功能方面占据着关键位置。作为光源,我们采用裸芯片形式的光电组件(例如边缘发射激光二极管),因为它们的极小结构有助于实现高集成度并确保足够的系统灵活性。柔性版印刷的聚合物光波导被部署为光导结构,用于平面光电系统中的短距离通信。印刷工艺用于这一代波导,以实现具有成本效益的大规模和高通量生产。为了获得用于传感应用的高性能光电系统,最重要的先决条件之一是光源与波导之间的高耦合效率。因此,在这项工作中,我们将重点放在具有抛物线形截面的多模聚合物波导上,并研究其与裸激光二极管的光耦合。我们基于先前关于裸激光二极管的光电键合和聚合物波导的制造工艺的工作建立了对准的几何模型,并考虑了各种参数,例如激光二极管的光束轮廓,所采用的聚合物特性。因此,模拟了裸激光二极管和聚合物波导的光耦合。此外,我们通过采用上述用于定义模拟的过程来演示光链路。我们通过使用主动对准来验证用于平面光电系统的开发工艺的可行性,并进行讨论以进一步改善光学对准。 ©2016 SPIE。

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