Spectral information acquisition enabled by a multi-aperture imaging system with high spatial resolution capability

Wei Li, Jiali Liao, Zihao Wang, Yanling Sun, Linke Liu, Jinrong Lan
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Abstract

Multi-aperture optical telescopes have been extensively researched because they can achieve a comparable high spatial resolution as a single large filled aperture. However, the spectral information of the objects is also essential and can effectively reflect their physical and chemical characteristics. Applying the Fourier transform imaging spectroscopy (FTIS) technique, the multi-aperture imaging system can also obtain spectral information by scanning the optical path delay (OPD) between sub-apertures. Here, we propose a scheme to appropriately set up the optical path control module of the multi-aperture system, enabling the acquisition of both high spatial resolution images and spectral information within a single multi-aperture imaging system. High spatial resolution information is obtained when the sub-apertures are in phase, and spectral information is obtained when OPDs between sub-apertures are scanned. Detailed simulations have been conducted for point-like sources and extended objects. It indicates that the system can obtain non-overlapping spectral information when applying an appropriate delay rate for each sub-aperture. Moreover, it also shows that some redundant low-frequency information is resolved from the extended objects, which originates from the image degradation caused by the separated sub-apertures of the system. The FTIS experiments performed with a multi-aperture imaging system have been carried out, demonstrating the input spectral information can be recovered precisely. The proposed scheme enables the multi-aperture imaging system to obtain high spatial resolution images and spectral information, expanding its functionality while controlling its cost and complexity.
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利用具有高空间分辨率能力的多孔径成像系统获取光谱信息
多孔径光学望远镜可以达到与单个大填充孔径相当的高空间分辨率,因此得到了广泛的研究。然而,天体的光谱信息也是必不可少的,它能有效地反映天体的物理和化学特征。应用傅立叶变换成像光谱(FTIS)技术,多孔径成像系统还可以通过扫描子孔径之间的光路延迟(OPD)来获取光谱信息。在此,我们提出了一种合理设置多孔径系统光路控制模块的方案,从而在单个多孔径成像系统中同时获取高空间分辨率图像和光谱信息。当子孔相位一致时,可获得高空间分辨率信息;当扫描子孔间的 OPD 时,可获得光谱信息。针对点状光源和扩展物体进行了详细模拟。结果表明,当对每个子孔径采用适当的延迟率时,系统可以获得不重叠的光谱信息。此外,模拟结果还表明,扩展物体的一些冗余低频信息被解析出来,这些冗余低频信息来自于系统中分离的子孔径造成的图像劣化。利用多孔径成像系统进行的 FTIS 实验表明,输入的光谱信息可以精确恢复。所提出的方案使多孔成像系统能够获得高空间分辨率图像和光谱信息,在控制成本和复杂性的同时扩展了其功能。
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