• DocumentCode
    1755337
  • Title

    Integral Equation Analysis of Plane Wave Scattering by Coplanar Graphene-Strip Gratings in the THz Range

  • Author

    Shapoval, Olga V. ; Gomez-Diaz, Juan Sebastian ; Perruisseau-Carrier, Julien ; Mosig, Juan R. ; Nosich, Alexander I.

  • Author_Institution
    Lab. of Micro & Nano-Opt., Inst. of Radio-Phys. & Electron., Kharkiv, Ukraine
  • Volume
    3
  • Issue
    5
  • fYear
    2013
  • fDate
    Sept. 2013
  • Firstpage
    666
  • Lastpage
    674
  • Abstract
    The plane wave scattering and absorption by finite and infinite gratings of free-space standing infinitely long graphene strips are studied in the THz range. A novel numerical approach, based on graphene surface impedance, hyper-singular integral equations, and the Nystrom method, is proposed. This technique guarantees fast convergence and controlled accuracy of computations. Reflectance, transmittance, and absorbance are carefully studied as a function of graphene and grating parameters, revealing the presence of surface plasmon resonances. Specifically, larger graphene relaxation times increases the number of resonances in the THz range, leading to higher wave transmittance due to the reduced losses; on the other hand an increase of graphene chemical potential up-shifts the frequency of plasmon resonances. It is also shown that a relatively low number of graphene strips ( >10) are able to reproduce Rayleigh anomalies. These features make graphene strips good candidates for many applications, including tunable absorbers and frequency selective surfaces.
  • Keywords
    Rayleigh scattering; chemical potential; diffraction gratings; graphene; integral equations; surface impedance; surface plasmon resonance; terahertz wave spectra; C; Nystrom method; Rayleigh anomalies; THz range; absorbance; chemical potential; coplanar graphene-strip gratings; fast convergence; finite gratings; free-space standing infinitely long graphene strips; frequency selective surfaces; graphene relaxation times; graphene surface impedance; hypersingular integral equations; infinite gratings; integral equation analysis; plane wave absorption; plane wave scattering; reflectance; surface plasmon resonances; transmittance; tunable absorbers; Graphene strips; Nystrom-type algorithm; singular and hyper-singular integral equations (IEs); surface plasmon resonances;
  • fLanguage
    English
  • Journal_Title
    Terahertz Science and Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    2156-342X
  • Type

    jour

  • DOI
    10.1109/TTHZ.2013.2263805
  • Filename
    6524017