Wu Xue, Sengupta Kaushik
Opt Express. 2018 Mar 19;26(6):7163-7175. doi: 10.1364/OE.26.007163.
This paper demonstrates a methodology to miniaturize THz spectroscopes into a single silicon chip by eliminating traditional solid-state architectural components such as complex tunable THz and optical sources, nonlinear mixing and amplifiers. The proposed method achieves this by extracting incident THz spectral signatures from the surface of an on-chip antenna itself. The information is sensed through the spectrally-sensitive 2D distribution of the impressed current surface under the THz incident field. By converting the antenna from a single-port to a massively multi-port architecture with integrated electronics and deep subwavelength sensing, THz spectral estimation is converted into a linear estimation problem. We employ rigorous regression techniques and analysis to demonstrate a single silicon chip system operating at room temperature across 0.04-0.99 THz with 10 MHz accuracy in spectrum estimation of THz tones across the entire spectrum.
本文展示了一种通过消除传统固态架构组件(如复杂的可调太赫兹和光源、非线性混频器和放大器)将太赫兹光谱仪小型化到单个硅芯片中的方法。所提出的方法通过从片上天线本身的表面提取入射太赫兹光谱特征来实现这一点。该信息是通过太赫兹入射场下感应电流表面的光谱敏感二维分布来感知的。通过将天线从单端口转换为具有集成电子器件和深亚波长传感的大规模多端口架构,太赫兹光谱估计被转换为一个线性估计问题。我们采用严格的回归技术和分析来证明一个在室温下工作的单个硅芯片系统,其在0.04 - 0.99太赫兹范围内运行,在整个光谱的太赫兹音调光谱估计中具有10兆赫兹的精度。