Opt Lett. 2023 Apr 1;48(7):1742-1745. doi: 10.1364/OL.481037.
Conventional optical fibers have good light conduction and transmission properties, and have been widely used in the fields of long-distance fiber-optic communication and sensing. However, due to the dielectric properties of the fiber core and cladding materials, the spot size of the transmitted light is dispersive, which greatly limits the application areas of optical fiber. The emergence of metalenses based on artificial periodic micro-nanostructures is opening the door to a variety of fiber innovations. We demonstrate an ultracompact beam-focusing fiber-optic device based on a composite structure of a single-mode fiber (SMF), a multimode fiber (MMF), and a metalens consisting of periodic micro-nano silicon column structures. Convergent beams with numerical apertures (NAs) of up to 0.64@air and a focal length of 63.6 μm are produced by the metalens on the MMF end face. The metalens-based fiber-optic beam-focusing device could find new applications in optical imaging, particle capture and manipulation, sensing, and fiber lasers.
传统光纤具有良好的导光和传输性能,已广泛应用于长距离光纤通信和传感领域。然而,由于光纤芯和包层材料的介电特性,传输光的光斑尺寸是色散的,这极大地限制了光纤的应用领域。基于人工周期性微纳结构的超构透镜的出现为各种光纤创新开辟了道路。我们展示了一种基于单模光纤 (SMF)、多模光纤 (MMF) 和由周期性微纳硅柱结构组成的超构透镜的超紧凑聚焦光纤器件。超构透镜在 MMF 端面产生数值孔径 (NA) 高达 0.64@air 和焦距为 63.6 μm 的会聚光束。基于超构透镜的光纤光束聚焦器件在光学成像、粒子捕获和操控、传感和光纤激光器等领域可能有新的应用。