Title :
Prediction of Transmission Shape-Resonances in Aperture Arrays With One- or Twofold Mirror-Symmetry Based on a Near-Field Phase Property
Author :
Hui-Hsin Hsiao ; Hung-Chun Chang
Author_Institution :
Grad. Inst. of Photonics & Optoelectron., Nat. Taiwan Univ., Taipei, Taiwan
Abstract :
The light-transmission resonant behavior of complex-shaped patterns can be difficult to estimate intuitively due to many possible resonant contours. In this paper, we propose a simple method to predict the effective resonant paths of onefold or twofold mirror-symmetry patterns, which exploits the antiphase property of certain field component along the resonant path and the symmetry requirement associated with the incident-wave polarization state. In addition, the resonant wavelengths for aperture-type patterns can further be estimated by a simple modified cutoff wavelength equation for a rectangular waveguide. Such prediction is validated by the simulated results of the finite-difference time domain method. In addition, we discuss how the separation distance between slit elements in the aperture affects the resonant wavelength, showing how the coupling between adjacent slits would play a role in the variation of the spectra. By studying the properties of such factors and how they interact in detail, we could manipulate the spectra with an additional degree of freedom, which could be important to structures with multielements in one unit cell.
Keywords :
finite difference time-domain analysis; light polarisation; light transmission; mirrors; optical arrays; optical waveguides; rectangular waveguides; antiphase property; aperture arrays; aperture-type pattern; complex-shaped pattern; field component; finite-difference time domain method; incident-wave polarization state; light-transmission resonant behavior; near-field phase property; onefold mirror-symmetry pattern; rectangular waveguide; resonant path; resonant wavelength; simple modified cutoff wavelength equation; slit elements; transmission shape-resonance; twofold mirror-symmetry pattern; Apertures; Couplings; Finite difference methods; Mirrors; Plasmons; Substrates; Time-domain analysis; Frequency-selective surfaces; infrared; metamaterials; surface plasmons;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2014.2305177