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Enablement of advanced silicon photonics optical passive library design leveraging silicon based RF passive development methodology

机译:利用基于硅的RF无源开发方法,实现高级硅光子学光学无源库设计

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Silicon photonics technology emerged as a promising solution to address the technical challenges related to 100 Gb/s and 400 Gb/s optical link. Enabling the development of silicon photonics products requires the development of optical passive libraries integrated within conventional CAD tools used in the CMOS design flow. The optimization and modeling of silicon photonics optical passive is therefore a key point that can be addressed by leveraging methodologies that have been previously set up for optimizing RF passive in CMOS and BiCMOS technologies. In this paper, the relevance of such an approach is evaluated: the combination of FDTD electromagnetic simulations and a Design Of Experiments (DOE) prototyping have been used for optimizing scalable Grating Couplers (GCs) targeting Wavelength-Division Multiplexing applications (WDM). The obtained models for the GC have been successfully qualified experimentally.
机译:硅光子技术已成为解决100 Gb / s和400 Gb / s光链路相关技术挑战的有前途的解决方案。要开发硅光子产品,就需要开发集成在CMOS设计流程中使用的常规CAD工具中的光学无源库。因此,硅光子光学无源器件的优化和建模是一个关键点,可以通过利用先前建立的用于在CMOS和BiCMOS技术中优化RF无源器件的方法来解决。在本文中,对这种方法的相关性进行了评估:FDTD电磁仿真与实验设计(DOE)原型相结合已用于优化针对波分复用应用(WDM)的可伸缩光栅耦合器(GC)。所获得的GC模型已通过实验成功验证。

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