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High-performance and scalable on-chip digital Fourier transform spectroscopy

机译:高性能且可扩展的片上数字傅里叶变换光谱

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摘要

On-chip spectrometers have the potential to offer dramatic size, weight, and power advantages over conventional benchtop instruments for many applications such as spectroscopic sensing, optical network performance monitoring, hyperspectral imaging, and radio-frequency spectrum analysis. Existing on-chip spectrometer designs, however, are limited in spectral channel count and signal-to-noise ratio. Here we demonstrate a transformative on-chip digital Fourier transform spectrometer that acquires high-resolution spectra via time-domain modulation of a reconfigurable Mach-Zehnder interferometer. The device, fabricated and packaged using industry-standard silicon photonics technology, claims the multiplex advantage to dramatically boost the signal-to-noise ratio and unprecedented scalability capable of addressing exponentially increasing numbers of spectral channels. We further explore and implement machine learning regularization techniques to spectrum reconstruction. Using an ‘elastic-D1’ regularized regression method that we develop, we achieved significant noise suppression for both broad (>600 GHz) and narrow (<25 GHz) spectral features, as well as spectral resolution enhancement beyond the classical Rayleigh criterion.
机译:片上光谱仪具有比常规台式仪器更大的尺寸,重量和功率优势,可用于许多应用,例如光谱感测,光网络性能监控,高光谱成像和射频频谱分析。但是,现有的片上光谱仪设计在光谱通道数和信噪比方面受到限制。在这里,我们演示了一种可转换的片上数字傅立叶变换光谱仪,该光谱仪通过可重构Mach-Zehnder干涉仪的时域调制获取高分辨率光谱。该器件使用行业标准的硅光子技术制造和封装,具有多重优势,可以显着提高信噪比和前所未有的可扩展性,能够应对指数级增长的光谱通道。我们进一步探索并实施机器学习正则化技术以进行频谱重建。使用我们开发的“弹性D1”正则化回归方法,我们实现了宽频谱(> 600 GHz)和窄频谱(<25 GHz)的显着噪声抑制,以及超出经典瑞利标准的频谱分辨率增强。

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