Shaping the spatial and spectral emissivity at the diffraction limit

  • Mathilde Makhsiyan
  • , Patrick Bouchon
  • , Julien Jaeck
  • , Jean Luc Pelouard
  • , Riad Haïdar

Research output: Contribution to journalArticlepeer-review

Abstract

Metasurfaces have attracted a growing interest for their ability to artificially tailor an electromagnetic response on various spectral ranges. In particular, thermal sources with unprecedented abilities, such as directionality or monochromaticity, have been achieved. However, these metasurfaces exhibit homogeneous optical properties whereas the spatial modulation of the emissivity up to the wavelength scale is at the crux of the design of original emitters. In this letter, we study an inhomogeneous metasurface made of a nonperiodic set of optical nano-antennas that spatially and spectrally control the emitted light up to the diffraction limit. Each antenna acts as an independent deep subwavelength emitter for given polarization and wavelength. Their juxtaposition at the subwavelength scale encodes far field multispectral and polarized images. This opens up promising breakthroughs for applications such as optical storage, anti-counterfeit devices, and multispectral emitters for biochemical sensing.

Original languageEnglish
Article number251103
JournalApplied Physics Letters
Volume107
Issue number25
DOIs
Publication statusPublished - 21 Dec 2015

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