Design of a polarization-insensitive and broadband tunable terahertz absorber based on VO<sub>2</sub> phase-change metamaterials
D. Y. Wang, Wei Wang, Huihui Cheng, Xinran Ji, Qiannan Wu, Mengwei Li
North University of China
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The paper proposes a polarization-insensitive and broadband tunable terahertz absorber based on VO 2 phase-change metamaterials to tackle critical technical issues in conventional terahertz absorbers, including poor frequency tunability, large structural size, and limited bandwidth coverage. Featuring a three-layer configuration composed of a bottom Au reflective layer, a middle SiO 2 dielectric layer, and a top patterned VO 2 functional layer, the absorber achieves an ultra-broadband absorption bandwidth of 6.7 THz from 7.3 to 14 THz, with an absorption efficiency stably exceeding 90% across the entire band, indicating near-perfect absorption. Leveraging the distinctive phase-transition characteristics of VO 2 , the absorber enables flexible tuning of absorption properties while remaining insensitive to both TE and TM polarization modes. This design integrates broad bandwidth, high performance, and tunability, offering a novel strategy for terahertz absorber design. It holds significant potential for applications in high-speed communication, high-resolution imaging, and high-precision sensing, thereby driving technological advancements in these cutting-edge fields.
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材料 / 化学Metamaterials and Metasurfaces Applications
Terahertz technology and applications · Energy Harvesting in Wireless Networks
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