English

Fullwave Maxwell inverse design of axisymmetric, tunable, and multi-scale multi-wavelength metalenses

Optics 2020-12-02 v3 Applied Physics

Abstract

We demonstrate new axisymmetric inverse-design techniques that can solve problems radically different from traditional lenses, including \emph{reconfigurable} lenses (that shift a multi-frequency focal spot in response to refractive-index changes) and {\emph{widely separated}} multi-wavelength lenses (λ=1μ\lambda = 1\,\mum and 10μ10\,\mum). We also present experimental validation for an axisymmetric inverse-designed monochrome lens in the near-infrared fabricated via two-photon polymerization. Axisymmetry allows fullwave Maxwell solvers to be scaled up to structures hundreds or even thousands of wavelengths in diameter before requiring domain-decomposition approximations, while multilayer topology optimization with 105\sim 10^5 degrees of freedom can tackle challenging design problems even when restricted to axisymmetric structures.

Keywords

Cite

@article{arxiv.2007.11661,
  title  = {Fullwave Maxwell inverse design of axisymmetric, tunable, and multi-scale multi-wavelength metalenses},
  author = {Rasmus E. Christiansen and Zin Lin and Charles Roques Carmes and Yannick Salamin and Steven E. Kooi and John D. Joannopoulos and Marin Soljačić and Steven G. Johnson},
  journal= {arXiv preprint arXiv:2007.11661},
  year   = {2020}
}

Comments

13 pages, 6 figures