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完美异常折射超表面实现了半空间光束扫描。

Perfect anomalous refraction metasurfaces empowered half-space optical beam scanning.

作者信息

He Tao, Li Dongdong, Li Chengfeng, Liang Haigang, Feng Chao, Zhu Jingyuan, Xie Lingyun, Dong Siyu, Shi Yuzhi, Dun Xiong, Wei Zeyong, Wang Zhanshan, Cheng Xinbin

机构信息

Institute of Precision Optical Engineering, School of Physics Science and Engineering, Tongji University, Shanghai, China.

MOE Key Laboratory of Advanced Micro-Structured Materials, Shanghai, China.

出版信息

Nat Commun. 2025 Apr 1;16(1):3115. doi: 10.1038/s41467-025-58502-1.

Abstract

Metasurface-based optical beam scanning devices are gaining attention in optics and photonics for their potential to revolutionize light detection and ranging systems. However, achieving anomalous refraction with perfect efficiency (>99%) remains challenging, limiting the efficiency and field of view (FOV) of metasurface-based optical beam scanning devices. Here, we introduce a paradigm for achieving perfect anomalous refraction by augmenting longitudinal degrees of freedom arousing a multiple scattering process to optimize symmetry breaking. An all-dielectric quasi-three-dimensional subwavelength structure (Q3D-SWS), composed of a purposely designed multilayer film and a dielectric metasurface separated by a spacer, is proposed to eliminate reflection loss and spurious diffraction, achieving >99% anomalous refraction efficiency. By independently rotating two cascaded Q3D-SWSs, we experimentally showcase half-space optical beam scanning, achieving a FOV of 144° × 144°, with a maximum efficiency exceeding 86%. Our results open new avenues for high-efficiency metasurfaces and advances applications in light detection and ranging systems.

摘要

基于超表面的光束扫描装置因其在光探测和测距系统中具有变革潜力而在光学和光子学领域受到关注。然而,要实现完美效率(>99%)的异常折射仍然具有挑战性,这限制了基于超表面的光束扫描装置的效率和视场(FOV)。在此,我们引入一种范式,通过增加纵向自由度引发多重散射过程以优化对称性破缺来实现完美的异常折射。提出了一种全介质准三维亚波长结构(Q3D-SWS),它由特意设计的多层膜和由间隔层隔开的介质超表面组成,以消除反射损耗和杂散衍射,实现>99%的异常折射效率。通过独立旋转两个级联的Q3D-SWS,我们通过实验展示了半空间光束扫描,实现了144°×144°的视场,最大效率超过86%。我们的结果为高效超表面开辟了新途径,并推动了光探测和测距系统中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c76/11962070/bd418fa7159e/41467_2025_58502_Fig1_HTML.jpg

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