4.7 Article

Highly ordered laser imprinted plasmonic metasurfaces for polarization sensitive perfect absorption

Journal

SCIENTIFIC REPORTS
Volume 12, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41598-022-21647-w

Keywords

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Funding

  1. European Union
  2. Greek national funds through the operational program Competitiveness, Entrepreneurship and Innovation [T2EDK-02073]
  3. European Union's Horizon 2020 framework programme for research and innovation under the NFFA-Europe-Pilot project [101007417]

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In this study, polarization-sensitive gap surface plasmon metasurfaces were fabricated on Ni film using laser-induced periodic surface structures, achieving polarization control through the size and infiltrating material of the insulating cavity.
We present polarization-sensitive gap surface plasmon metasurfaces fabricated with direct material processing using pulsed laser light, an alternative and versatile approach. In particular we imprint laser induced periodic surface structures on nanometer-thick Ni films, which are back-plated by a grounded dielectric layer with TiO2 and ZnO deposition followed by Au evaporation. The procedure results in a metal-insulator-metal type plasmonic metasurface with a corrugated top layer consisting of highly-ordered, sinusoidal shaped, periodic, thin, metallic nanowires. The metasurface sustains sharp, resonant gap surface plasmons and provides various opportunities for polarization control in reflection, which is here switched by the size and infiltrating material of the insulating cavity. The polarization control is associated with the polarization sensitive perfect absorption and leads to high extinction ratios in the near-IR and mid-IR spectral areas. Corresponding Fourier-transform infrared spectroscopy measurements experimentally demonstrate that the fabrication approach produces metasurfaces with very well-defined, controllable, sharp resonances and polarization sensitive resonant absorption response which, depending on the insulating cavity size, impacts either the normal or the parallel to the nanowires polarization.

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