Dual-wide-band absorber of truncated-cone structure, based on metamaterial

  • Kim, Y.J. (Department of Physics, Quantum Photonic Science Research Center and RINS, Hanyang University) ;
  • Yoo, Y.J. (Department of Physics, Quantum Photonic Science Research Center and RINS, Hanyang University) ;
  • Rhee, J.Y. (Sungkyunkwan University) ;
  • Kim, K.W. (Sunmoon University) ;
  • Park, S.Y. ;
  • Lee, Y.P. (Department of Physics, Quantum Photonic Science Research Center and RINS, Hanyang University)
  • Published : 2015.08.24

Abstract

Artificially-engineered materials, whose electromagnetic properties are not available in nature, such as negative reflective index, are called metamaterials (MMs). Although many scientists have investigated MMs for negative-reflective-index properties at the beginning, their interests have been extended to many other fields comprising perfect lenses. Among various kinds of MMs, metamaterial absorbers (MM-As) mimic the blackbody through minimizing transmission and reflection. In order to maximize absorption, the real and the imaginary parts of the permittivity and permeability of MM-As should be adjusted to possess the same impedance as that of free space. We propose a dual-wide-band and polarization-independent MM-A. It is basically a triple-layer structure made of metal/dielectric multilayered truncated cones. The multilayered truncated cones are periodically arranged and play a role of meta-atoms. We realize not only a wide-band absorption, which utilizes the fundamental magnetic resonances, but also another wide-band absorption in the high-frequency range based on the third-harmonic resonances, in both simulation and experiment. In simulation, the absorption bands with absorption higher than 90% are 3.93 - 6.05 GHz and 11.64 - 14.55 GHz, while the experimental absorption bands are in 3.88 - 6.08 GHz and 9.95 - 13.84 GHz. The physical origins of these absorption bands are elucidated. Additionally, it is also polarization-independent because of its circularly symmetric structures. Our design is scalable to smaller size for the infrared and the visible ranges.

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