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用于高性能热成像的消色差和消彗差混合超光学器件。

Achromatic and Coma-Corrected Hybrid Meta-Optics for High-Performance Thermal Imaging.

作者信息

Liu Mingze, Zhao Weixing, Wang Yilin, Huo Pengcheng, Zhang Hui, Lu Yan-Qing, Xu Ting

机构信息

National Laboratory of Solid-State Microstructures, College of Engineering and Applied Sciences and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.

Key Laboratory of Intelligent Optical Sensing and Manipulation, Nanjing University, Nanjing 210093, China.

出版信息

Nano Lett. 2024 Jun 26;24(25):7609-7615. doi: 10.1021/acs.nanolett.4c01218. Epub 2024 Jun 11.

Abstract

Long-wave infrared (LWIR) imaging, or thermal imaging, is widely applied in night vision and security monitoring. However, the widespread use of LWIR imagers is impeded by their bulky size, considerable weight, and high cost. While flat meta-optics present a potential solution to these limitations, existing pure LWIR meta-optics face constraints such as severe chromatic or coma aberrations. Here, we introduce an approach utilizing large-scale hybrid meta-optics to address these challenges and demonstrate the achromatic, coma-corrected, and polarization-insensitive thermal imaging. The hybrid metalens doublet is composed of a metasurface corrector and a refractive lens, featuring a full field-of-view angle surpassing 20° within the 8-12 μm wavelength range. Employing this hybrid metalens doublet, we showcase high-performance thermal imaging capabilities both indoors and outdoors, effectively capturing ambient thermal radiation. The proposed hybrid metalens doublet holds considerable promise for advancing miniaturized, lightweight, and cost-effective LWIR optical imaging systems.

摘要

长波红外(LWIR)成像,即热成像,广泛应用于夜视和安全监控领域。然而,LWIR成像仪因其体积庞大、重量可观和成本高昂,其广泛应用受到阻碍。虽然平面超光学元件为解决这些限制提供了一种潜在方案,但现有的纯LWIR超光学元件面临诸如严重色差或彗差等限制。在此,我们介绍一种利用大规模混合超光学元件的方法来应对这些挑战,并展示了消色差、彗差校正和偏振不敏感的热成像。混合金属透镜双合透镜由一个超表面校正器和一个折射透镜组成,在8 - 12μm波长范围内具有超过20°的全视场角。采用这种混合金属透镜双合透镜,我们展示了在室内和室外的高性能热成像能力,有效捕捉周围的热辐射。所提出的混合金属透镜双合透镜在推进小型化、轻量化和经济高效的LWIR光学成像系统方面具有巨大潜力。

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