arXiv · 1512.07763
Phenomenological modeling of Geometric Metasurfaces
Abstract
Metasurfaces, with their superior capability in manipulating the optical wavefront at the subwavelength scale and low manufacturing complexity, have shown great potential for planar photonics and novel optical devices. However, vector field simulation of metasurfaces is so far limited to periodic-structured metasurfaces containing a small number of meta-atoms in the unit cell by using full-wave numerical methods. Here, we propose a general phenomenological method to analytically model metasurfaces made up of arbitrarily distributed meta-atoms based on the assumption that the meta-atoms possess localized resonances with Lorentz-Drude forms, whose exact form can be retrieved from the full wave simulation of a single element. Applied to phase modulated geometric metasurfaces, our analytical results show good agreement with full-wave numerical simulations. The proposed theory provides an efficient method to model and design optical devices based on metasurfaces.
Explore related subjects
Keep this discovery
Weimin Ye, Qinghua Guo, Yuanjiang Xiang, Dianyuan Fan, Shuang Zhang. 2015-12-24. Phenomenological modeling of Geometric Metasurfaces. https://doi.org/10.1364/oe.24.007120
Cite the original work for its findings. Save a collection to share your selection of sources.