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Large-range, continuously tunable perfect absorbers based on Dirac semimetals
Author(s) -
Xinwei Shi,
Panpan Fang,
Xiang Zhai,
Hongjian Li,
Lingling Wang
Publication year - 2020
Publication title -
optics express
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.385181
Subject(s) - metamaterial , plasmon , zigzag , optics , optoelectronics , resonance (particle physics) , physics , coupled mode theory , fano resonance , dirac (video compression format) , slow light , materials science , photonic crystal , refractive index , atomic physics , quantum mechanics , geometry , mathematics , neutrino
Plasmonic metamaterials enable manipulation of light at subwavelength scales and exhibit unique optical functionalities. However, the realization of high-performance, large-range, and dynamically tunable optical absorbers based on plasmonic metamaterials remains challenging. Here, we propose and demonstrate a continuously tunable absorbers consisting of a zigzag array of bulk Dirac semimetals (BDS) meta-atoms and a metal reflector spaced by insulator layers. This structure exhibits a collective resonance formed by the electric dipole modes polarized along the long axis of each individual meta-atom, which allows us to precisely control this resonance frequency by fine-tuning the unit cell geometry and the Fermi energy levels of the BDS. In addition, the related physical mechanism behind this complete absorption can explained by employing coupled-mode theory (CMT) and mode-expansion theory (MET). Our results may arouse the investigations of the tunable metamaterials device based on the BDS.

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