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Fourier transform spectrometer on silicon with thermo-optic non-linearity and dispersion correction

机译:具有热光非线性和色散校正的硅上傅立叶变换光谱仪

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Miniaturized integrated spectrometers will have unprecedented impact on applications ranging from unmanned aerial vehicles to mobile phones, and silicon photonics promises to deliver compact, cost-effective devices. Mirroring its ubiquitous free-space counterpart, a silicon photonics-based Fourier transform spectrometer (Si-FTS) can bring broadband operation and fine resolution to the chip scale. Here we present the modeling and experimental demonstration of a thermally tuned Si-FTS accounting for dispersion, thermo-optic non-linearity, and thermal expansion. We show how these effects modify the relation between the spectrum and interferogram of a light source and we develop a quantitative correction procedure through calibration with a tunable laser. We retrieve a broadband spectrum (7?THz around 193.4?THz with 0.38-THz resolution consuming 2.5?W per heater) and demonstrate the Si-FTS resilience to fabrication variations—a major advantage for large-scale manufacturing. Providing design flexibility and robustness, the Si-FTS is poised to become a fundamental building block for on-chip spectroscopy.
机译:小型化的集成光谱仪将对从无人机到移动电话的各种应用产生前所未有的影响,而硅光子技术有望提供紧凑,经济高效的设备。基于其普遍存在的自由空间的镜像,基于硅光子学的傅立叶变换光谱仪(Si-FTS)可以为芯片规模带来宽带操作和更高的分辨率。在这里,我们介绍了考虑了色散,热光非线性和热膨胀的热调谐Si-FTS的建模和实验演示。我们展示了这些效应如何改变光源的光谱和干涉图之间的关系,并且我们通过使用可调激光器进行校准来开发定量校正程序。我们检索了宽带频谱(193.4?THz处的7?THz,0.38-THz的分辨率,每个加热器消耗2.5?W的功率),并证明了Si-FTS对制造变化的适应力-这是大规模制造的主要优势。提供设计灵活性和坚固性,Si-FTS有望成为片上光谱的基本构建块。

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