Dielectric metasurface-based high-efficiency mid-infrared optical filter

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Abstract

Dielectric nanoresonantors may generate both electric and magnetic Mie resonances with low optical loss, thereby offering highly efficient paths for obtaining integrated optical devices. In this paper, we propose and design an optical filter with a high working efficiency in the mid-infrared (mid-IR) range, based on an all-dielectric metasurface composed of silicon (Si) nanodisk arrays. We numerically demonstrate that, by increasing the diameter of the Si nanodisk, the range of the proposed reflective optical filter could effectively cover a wide range of operation wavelengths, from 3.8 µm to 4.7 µm, with the reflection efficiencies reaching to almost 100%. The electromagnetic eigen-mode decomposition of the silicon nanodisk shows that the proposed optical filter is based on the excitation of the electric dipole resonance. In addition, we demonstrate that the proposed filter has other important advantages of polarization-independence and incident-angle independence, ranging from 0◦ to 20◦ at the resonance dip, which can be used in a broad range of applications, such as sensing, imaging, and energy harvesting.

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Shen, F., Kang, Q., Wang, J., Guo, K., Zhou, Q., & Guo, Z. (2018). Dielectric metasurface-based high-efficiency mid-infrared optical filter. Nanomaterials, 8(11). https://doi.org/10.3390/nano8110938

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