Enhancement and Suppression of Transmission in 3-D Nanoslits Arrays with 1- and 2-D Periodicities

Abstract

We investigate the transmission properties of arrays of three-dimensional (3-D) gold patches having one- and two-dimensional (1- and 2-D) periodicities, and describe the interaction of cavity and surface plasmon modes. We vary the main geometrical parameters to assess similarities and emphasize differences between 1-D and 2-D periodic patterns. We analyze the spectral response as a function of incident angle and polarization to corroborate our findings. We will also consider form and air filling factors of the grating to assess our ability to control the transmission spectrum. In particular, we observe strong inhibition of the transmission when the impinging wave-vector parallel to the surface of the metal matches the surface plasmon wave-vector of the unperturbed air-gold interface when added to the grating lattice wave-vector. This phenomenon favors the opening of a plasmonic band gap, featuring the suppression of transmission and simultaneous coupling to back-radiation (reflections) of the unperturbed surface plasmon. High-Q, resonating modes occur at the edges of the forbidden band, boosting the energy transfer across the grating thus providing enhanced transmission and broadside directivity at the exit side of the grating.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2011
Accession Number
ADA539570

Entities

People

  • A. D’orazio
  • D. De Ceglia
  • G. Morea
  • M. A. Vincenti
  • M. Grande
  • M. Scalora
  • R. Marani
  • V. Marrocco

Tags

Communities of Interest

  • Advanced Electronics
  • Air Platforms
  • Sensors

DTIC Thesaurus Topics

  • Band Gaps
  • Electric Fields
  • Energy Bands
  • Geometry
  • Magnetic Fields
  • Optical Properties
  • Periodic Variations
  • Plasmons
  • Polarization
  • Solar Cells
  • Spectra
  • Surface Plasmon Polaritons
  • Surface Plasmons
  • Three Dimensional
  • Topology
  • Two Dimensional
  • Waves

Fields of Study

  • Physics

Readers

  • Electromagnetic Wave Scattering and Antenna Radiation Engineering
  • Nanoscale Plasmonic Nanotechnology
  • Theoretical Analysis.