Sun Chuang, Wang Zixuan, Kiang Kian Shen, Buchnev Oleksandr, Tang Dawei, Yan Jize, Ou Jun-Yu
School of Electronics and Computer Science, University of Southampton, Southampton, SO17 1BJ, UK.
Optoelectronics Research Centre, University of Southampton, Southampton, SO17 1BJ, UK.
Small. 2024 Dec;20(49):e2404003. doi: 10.1002/smll.202404003. Epub 2024 Sep 23.
Dielectric metasurfaces have emerged as attractive devices for advanced imaging systems because of their high efficiency, ability of wavefront manipulation, and lightweight. The classical spin-multiplexing metasurfaces can only provide two orthogonal circular polarization channels and require high phase contrast which limits their applications. Here, metasurfaces with arbitrary three independent channels are demonstrated by proposing a nonclassical spin-multiplexing approach exploring the low refractive index meta-atoms. A zoom microscope with on-axis tri-foci and a synchronous achiral-chiral microscope with in-plane tri-foci based on silicon nitride metasurfaces are experimentally demonstrated. Based on the on-axis tri-foci metasurface, singlet zoom imaging with three magnifications and a broadband response (blue to red) based on a single metasurface is first demonstrated. A compact microscope (meta-scope) consisting of two metasurfaces with three magnifications of 9.5, 10, and 29X with diffraction-limited resolutions is further constructed, respectively. Utilizing the in-plane tri-foci metasurface, a singlet microscope with three achiral-chiral channels is demonstrated. It offers a magnification of 53X and a diffraction-limited resolution, enabling simultaneous imaging of an object's achiral and chiral properties. Our multifunctional metasurfaces and meta-scope approaches could boost the applications in biological imaging and machine vision.
介电超表面因其高效率、波前操纵能力和轻重量,已成为先进成像系统中颇具吸引力的器件。传统的自旋复用超表面只能提供两个正交圆偏振通道,且需要高相位对比度,这限制了它们的应用。在此,通过提出一种探索低折射率超原子的非传统自旋复用方法,展示了具有任意三个独立通道的超表面。基于氮化硅超表面,实验展示了一种具有同轴三焦点的变焦显微镜和一种具有面内三焦点的同步非手性 - 手性显微镜。基于同轴三焦点超表面,首次展示了基于单个超表面的具有三种放大倍数和宽带响应(从蓝光到红光)的单重态变焦成像。进一步构建了一个由两个超表面组成的紧凑型显微镜(超显微镜),其放大倍数分别为9.5倍、10倍和29倍,具有衍射极限分辨率。利用面内三焦点超表面,展示了一种具有三个非手性 - 手性通道的单重态显微镜。它提供53倍的放大倍数和衍射极限分辨率,能够同时成像物体的非手性和手性特性。我们的多功能超表面和超显微镜方法可推动生物成像和机器视觉中的应用。