Wang Ye, Pawlowski Michal E, Cheng Shuna, Dwight Jason G, Stoian Razvan I, Lu Jiawei, Alexander David, Tkaczyk Tomasz S
Opt Express. 2019 May 27;27(11):15701-15725. doi: 10.1364/OE.27.015701.
A fiber-based snapshot imaging spectrometer was developed with a maximum of 31853 (~188 x 170) spatial sampling and 61 spectral channels in the 450nm-750nm range. A compact, custom-fabricated fiber bundle was used to sample the object image at the input and create void spaces between rows at the output for dispersion. The bundle was built using multicore 6x6 fiber block ribbons. To avoid overlap between the cores in the direction of dispersion, we selected a subset of cores using two alternative approaches; a lenslet array and a photomask. To calibrate the >30000 spatial samples of the system, a rapid spatial calibration method was developed based on phase-shifting interferometry (PSI). System crosstalk and spectral resolution were also characterized. Preliminary hyperspectral imaging results of the Rice University campus landscape, obtained with the spectrometer, are presented to demonstrate the system's spectral imaging capability for distant scenes. The spectrum of different plant species with different health conditions, obtained with the spectrometer, was in accordance with reference instrument measurements. We also imaged Houston traffic to demonstrate the system's snapshot hyperspectral imaging capability. Potential applications of the system include terrestrial monitoring, land use, air pollution, water resources, and lightning spectroscopy. The fiber-based system design potentially allows tuning between spatial and spectral sampling to meet specific imaging requirements.
研制了一种基于光纤的快照成像光谱仪,其在450nm - 750nm范围内具有最多31853个(约188×170)空间采样点和61个光谱通道。使用了一个紧凑的定制光纤束在输入端对物体图像进行采样,并在输出端的行与行之间创建空隙以实现色散。该光纤束由多芯6×6光纤块带制成。为避免芯在色散方向上重叠,我们使用两种替代方法选择了一部分芯;一种是微透镜阵列,另一种是光掩膜。为校准该系统的30000多个空间采样点,基于相移干涉测量法(PSI)开发了一种快速空间校准方法。还对系统串扰和光谱分辨率进行了表征。展示了用该光谱仪获得的莱斯大学校园景观的初步高光谱成像结果,以证明该系统对远距离场景的光谱成像能力。用该光谱仪获得的不同健康状况的不同植物物种的光谱与参考仪器测量结果一致。我们还对休斯顿的交通进行了成像,以展示该系统的快照高光谱成像能力。该系统的潜在应用包括地面监测、土地利用、空气污染、水资源和闪电光谱学。基于光纤的系统设计有可能在空间和光谱采样之间进行调整,以满足特定的成像要求。