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An ultrathin and flexible terahertz electromagnetically induced transparency-like metasurface based on asymmetric resonators

EPJ Applied Metamaterials 2023 4 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 35 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Shohreh Nourinovin, S. J. Park, S. J. Park, Qammer H. Abbasi, Akram Alomainy Akram Alomainy

Summary

Researchers fabricated an ultrathin flexible terahertz electromagnetically induced transparency-like metasurface using asymmetric metallic resonators, achieving high Q-factor and strong electromagnetic field confinement for applications in sensing, slow light, and nonlinear effects.

Terahertz (THz) electromagnetically induced transparency-like (EIT-like) metasurfaces have been extensively explored and frequently used for sensing, switching, slow light, and enhanced nonlinear effects. Reducing radiation and non-radiation losses in EIT-like systems contributes to increased electromagnetic (EM) field confinement, higher transmission peak magnitude, and Q-factor. This can be accomplished by the use of proper dielectric properties and engineering novel designs. Therefore, we fabricated a THz EIT-like metasurface based on asymmetric metallic resonators on an ultra-thin and flexible dielectric substrate. Because the quadruple mode is stimulated in a closed loop, an anti-parallel surface current forms, producing a transparency window with a transmission peak magnitude of 0.8 at 1.96 THz. To control the growing trend of EIT-like resonance, the structure was designed with four asymmetry levels. The effect of the substrate on the resonance response was also explored, and we demonstrated experimentally how the ultra-thin substrate and the metasurface asymmetric novel pattern contributed to higher transmission and lower loss.

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