Li Yu, Fan Xinhao, Huang Yunfeng, Guo Xuyue, Zhou Liang, Li Peng, Zhao Jianlin
MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, and Shaanxi Key Laboratory of Optical Information Technology, School of Physical Science and Technology, Northwestern Polytechnical University, Xi'an 710129, China.
Xi'an Ming De Institute of Technology, Xi'an 710124, China.
Nanomaterials (Basel). 2022 Oct 5;12(19):3485. doi: 10.3390/nano12193485.
The phenomenon of optical superoscillation provides an unprecedented way to solve the problem of optical far-field label-free super-resolution imaging. Numerous optical devices that enable superoscillatory focusing were developed based on scalar and vector diffraction theories in the past several years. However, these reported devices are designed according to the half-wave zone method in spatial coordinates. In this paper, we propose a dielectric metalens for superoscillatory focusing based on the diffraction of angular Bessel functional phase modulated vector field, under the inspiration of the tightly autofocusing property of a radially polarized high-order Bessel beam. Based on this kind of metalens with a numerical aperture (NA) of 0.9, the linearly polarized light is converted into a radially polarized one and then focus into a superoscillating focal spot with the size of 0.32/NA. This angular spectrum modulation theory involved in this paper provides a different way of designing superoscillatory devices.
光学超振荡现象为解决光学远场无标记超分辨率成像问题提供了一种前所未有的方法。在过去几年中,基于标量和矢量衍射理论开发了许多能够实现超振荡聚焦的光学器件。然而,这些已报道的器件是根据空间坐标中的半波带法设计的。在径向偏振高阶贝塞尔光束紧密自聚焦特性的启发下,本文提出了一种基于角向贝塞尔函数相位调制矢量场衍射的用于超振荡聚焦的介质超表面透镜。基于这种数值孔径(NA)为0.9的超表面透镜,线偏振光被转换为径向偏振光,然后聚焦成尺寸为0.32/NA的超振荡焦点。本文所涉及的这种角谱调制理论为设计超振荡器件提供了一种不同的方法。