English

High-efficiency light-wave control with all-dielectric optical Huygens' metasurfaces

Optics 2015-06-24 v1

Abstract

Optical metasurfaces have developed as a breakthrough concept for advanced wave-front engineering enabled by subwavelength resonant nanostructures. However, reflection and/or absorption losses as well as low polarisation-conversion efficiencies pose a fundamental obstacle for achieving high transmission efficiencies that are required for practical applications. Here we demonstrate, for the first time to our knowledge, highly efficient all-dielectric metasurfaces for near-infrared frequencies using arrays of silicon nanodisks as meta-atoms. We employ the main features of Huygens' sources, namely spectrally overlapping electric and magnetic dipole resonances of equal strength, to demonstrate Huygens' metasurfaces with a full transmission-phase coverage of 360 degrees and near-unity transmission, and we confirm experimentally full phase coverage combined with high efficiency in transmission. Based on these key properties, we show that all-dielectric Huygens' metasurfaces could become a new paradigm for flat optical devices, including beam-steering, beam-shaping, and focusing, as well as holography and dispersion control.

Keywords

Cite

@article{arxiv.1405.5038,
  title  = {High-efficiency light-wave control with all-dielectric optical Huygens' metasurfaces},
  author = {Manuel Decker and Isabelle Staude and Matthias Falkner and Jason Dominguez and Dragomir N. Neshev and Igal Brener and Thomas Pertsch and Yuri S. Kivshar},
  journal= {arXiv preprint arXiv:1405.5038},
  year   = {2015}
}

Comments

17 pages, 5 figures