Liu Weiwei, Zhang Yuchao, Gao Jie, Yang Xiaodong
Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO, 65409, USA.
Sci Rep. 2018 Jun 22;8(1):9493. doi: 10.1038/s41598-018-27895-z.
Cusp beams are one type of complex structured beams with unique multiple self-accelerating channels and needle-like field structures owning great potentials to advance applications such as particle micromanipulation and super-resolution imaging. The traditional method to generate optical catastrophe is based on cumbrous reflective diffraction optical elements, which makes optical system complicated and hinders the nanophotonics integration. Here we design geometric phase based ultrathin plasmonic metasurfaces made of nanoslit antennas to produce three-dimensional (3D) optical cusp beams with variable numbers of self-accelerating channels in a broadband wavelength range. The entire beam propagation profiles of the cusp beams generated from the metasurfaces are mapped theoretically and experimentally. The special self-accelerating behavior and caustics concentration property of the cups beams are also demonstrated. Our results provide great potentials for promoting metasurface-enabled compact photonic devices used in wide applications of light-matter interactions.
尖点光束是一种具有独特的多个自加速通道和针状场结构的复杂结构光束,在推进诸如粒子微操纵和超分辨率成像等应用方面具有巨大潜力。传统的产生光学突变的方法基于笨重的反射衍射光学元件,这使得光学系统复杂并阻碍了纳米光子学集成。在此,我们设计了由纳米狭缝天线构成的基于几何相位的超薄等离子体超表面,以在宽带波长范围内产生具有可变数量自加速通道的三维(3D)光学尖点光束。从超表面产生的尖点光束的整个光束传播轮廓通过理论和实验进行了映射。还展示了尖点光束特殊的自加速行为和焦散集中特性。我们的结果为推动用于光与物质相互作用广泛应用的基于超表面的紧凑型光子器件提供了巨大潜力。