18 September 2019 Design and numerical simulations of a temperature tunable hybrid structure metamaterials
Saisai Wang, Jinwei Yao, Zhenya Zhang, Keming Zhang
Author Affiliations +
Abstract

A temperature tunable hybrid metamaterial absorber based on vanadium dioxide (VO2) particles is proposed and simulated in the terahertz frequency regime. An absorption peak is achieved at 6.13 THz at room temperature with maximum absorptivity of 97.3%, which is derived from the local surface plasma (LSP) mode resonance. The effect of geometric parameters on the absorption properties is revealed. When the simulated temperature reaches the phase change point of VO2 particles, the original absorption peak is enhanced and converted into an absorption band. Moreover, an absorption peak is achieved. These resonance behaviors are mainly due to the conversion of VO2 particles into new resonators in the proposed metamaterial absorber. LSP modes are supported by these VO2 particles resonance elements. The absorption band and new absorption peak are enhanced and shifted to lower frequencies with the simulated temperature increasing. An LC equivalent circuit model is proposed to understand these resonance absorption behaviors.

© 2019 Society of Photo-Optical Instrumentation Engineers (SPIE) 1934-2608/2019/$28.00 © 2019 SPIE
Saisai Wang, Jinwei Yao, Zhenya Zhang, and Keming Zhang "Design and numerical simulations of a temperature tunable hybrid structure metamaterials," Journal of Nanophotonics 13(3), 036019 (18 September 2019). https://doi.org/10.1117/1.JNP.13.036019
Received: 20 February 2019; Accepted: 4 September 2019; Published: 18 September 2019
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KEYWORDS
Absorption

Particles

Metamaterials

Metals

Terahertz radiation

Numerical simulations

Tunable metamaterials

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