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A Low-Loss SiN photonic integrated circuit foundry platform for waveguide-enhanced Raman spectroscopy

机译:用于波导增强拉曼光谱的低损耗SIN光子集成电路铸造平台

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The development of a foundry-scale waveguide-enhanced Raman spectroscopy (WERS) platform is a vital for the widespead implementation of this analytical technique. In this work we analyze the waveguide material and fabrication processes offered by AIM Photonics with regard to their effectiveness for WERS, and other sensing techniques. Optical characterization of these materials via white light spectroscopy and fluorescence spectroscopy points to the designation of an optimal wafer composition comprising a thermal bottom oxide and an LPCVD silicon nitride waveguide. This optimal composition has no measurable fluorescence and a propagation loss of 3.2 dB/m at 1064 nm in the TM00 mode. In the c/l band, the optimal wafer build has as thermal bottom oxide, a PECVD silicon nitride waveguide, and is annealed. This build has a propagation loss of 8.1 dB/m at 1550 nm in the TE00 mode.
机译:铸造级波导增强拉曼光谱(WERS)平台的开发对于这种分析技术的广泛实现至关重要。 在这项工作中,我们分析了Aim Pheronics提供的波导材料和制造过程,了解其对WERS的有效性以及其他传感技术。 这些材料通过白光光谱和荧光光谱的光学表征,指定具有热底氧化物和LPCVD氮化硅波导的最佳晶片组合物的指定。 这种最佳组合物在TM00模式下没有可测量的荧光和3.2dB / m的传播损失。 在C / L带中,最佳晶片构建具有热底氧化物,PECVD氮化硅波导,并退火。 该构建在TE00模式下在1550nm处具有8.1dB / m的传播损耗。

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