Tan Max J H, Freire-Fernández Francisco, Odom Teri W
Department of Chemistry, Northwestern University, Evanston, Illinois 60208, United States.
ACS Nano. 2024 Aug 27;18(34):23181-23188. doi: 10.1021/acsnano.4c05714. Epub 2024 Aug 12.
Cylindrical vector (CV) beams exhibit spatially varying polarization important in optical communication, super-resolution microscopy, and high-throughput information processing. Compared to radially or azimuthally polarized CV beams that are cylindrically symmetric, hybrid-electric (HE) beams offer increased optical tunability because of their polygonally symmetric polarizations. However, efforts to generate and isolate HE beams have relied on bulky optical assemblies or devices with complex and stringent fabrication requirements. Here, we report a moiré-based metasurface approach to engineer HE polarization states with high degrees of rotational symmetry. Importantly, polarization symmetries can be tailored based only on the reciprocal lattice of the metasurface and not the real-space patterns. Our modular method outlines important design principles for shaping light at the nanoscale.
柱面矢量(CV)光束呈现出空间变化的偏振特性,这在光通信、超分辨率显微镜和高通量信息处理中具有重要意义。与具有圆柱对称性的径向或方位角偏振CV光束相比,混合电(HE)光束由于其多边形对称偏振而具有更高的光学可调性。然而,产生和分离HE光束的努力依赖于庞大的光学组件或具有复杂且严格制造要求的器件。在此,我们报告一种基于莫尔条纹的超表面方法,用于设计具有高度旋转对称性的HE偏振态。重要的是,偏振对称性仅可基于超表面的倒易晶格而非实空间图案进行定制。我们的模块化方法概述了在纳米尺度上塑造光的重要设计原则。