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Optical transmitter module using polymer waveguide with fully integrated reflector mirrors

机译:光发射器模块使用聚合物波导,具有完全集成的反射镜

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The cost-effective and repeatable technology for integration of polymer multimode waveguide and out-of-plane 45° reflector mirrors is developed. This method is cost-effective, repeatable, robust, and fully compatible with the standard manufacturing processes for a 90° optical bending structure. The basic concept of the technology for integration of waveguide and out-of-plane 45° reflector mirrors is as follows; 1) The positively patterned master in order to mold waveguides is manufactured by using photolithography and Deep RIE (Reactive Ion Etching). And the master is polished to obtain 45°-inclined plane. 2) Both sides of the positively patterned master are divided into three parts by using a sawing machine. One is a center master (main-master) with a positively patterned waveguide and the others are side masters (sub-master) without a pattered waveguide. The main master and sub-master turned over get back together again. 3) The negatively patterned PDMS master to be able to mold simultaneously both waveguide and out-of-plane 45° reflector mirrors is manufactured through pouring PDMS gel into master and thermally curing the PDMS master. 4) The multimode tapered waveguides with out-of-plane 45° reflector mirrors are simultaneously embossed by using PDMS master. The UV (Ultraviolet) curable material is organic-inorganic hybrid material (HYBRIMER, core index: 1.51, clad index: 1.48). The transmitter module is constructed on a MOB. The MOB was employed for several purposes; to align optical module passively, to use as heat sinker and also to support the boards. On this MOB, 1×4 arrays of vertical-cavity surface-emitting laser (VCSEL) and Tapered Waveguide with 45° reflector mirrors are integrated. The height and width of waveguide's core are 100 μm, 60 μm respectively and the pitch is 250 μm. The transmission access lines in transmitter are designed considering differential impedance matching for high-speed operation. We measured the insertion loss of this transmitter module using a 62.5 μm graded index fiber. The average insertion loss value is roughly about 7dB.
机译:开发了用于集成聚合物多模波导和面外45°反射镜的成本有效和可重复的技术。该方法具有成本效益,可重复的,稳健,并且与用于90°光学弯曲结构的标准制造工艺完全兼容。用于集成波导和面外45°反射镜的技术的基本概念如下; 1)通过使用光刻和深rie(反应离子蚀刻)来制造用于模具波导的正图案母版。抛光母版以获得45° - 最终的平面。 2)通过使用锯床,正图案母料的两侧分为三个部件。一个是具有阳性图案化的波导的中心主硕士(主母主机),其他是没有图案化波导的侧主桅杆(子主机)。主掌握和子主机转过来再次回到一起。 3)通过将PDMS凝胶倒入掌握和热固化PDMS主母母母料并热固化PDMS主母母母母波动和热固化PDMS母部,可以同时模制所述波导和外平45°反射镜。 4)具有外平面45°反射镜的多模锥形波导通过使用PDMS母版同时压花。 UV(紫外线)可固化材料是有机无机杂化材料(杂交,核心指数:1.51,包层指数:1.48)。发射器模块在暴体上构造。 MOB用于几种目的;为了被动地对准光学模块,用作散热器,也可以支撑电路板。在该暴体中,整合了1×4垂直腔表面发射激光器(VCSEL)和具有45°反射镜的锥形波导。波导的芯的高度和宽度分别为100μm,60μm,间距为250μm。考虑到高速操作的差分阻抗匹配,设计了发射机中的传输通路。我们使用62.5μm分级指数光纤测量了该发射器模块的插入损耗。平均插入损耗值大约为7dB。

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