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◆ Physica Scripta2026-05-13· Narrowband

Design of a tunable terahertz metamaterial absorber for compact multifunctional communication and biosensing platforms

Manish Rai, Anup Kumar, Manoranjan Kumar, Rajesh Yadav, Vibhav Kumar Sachan

原始摘要(英文原文)· Original abstract
Abstract This paper investigates three novel four-blade fan-shaped structure (BFSS)-based tunable terahertz metamaterial absorbers (TMMAs). The proposed absorbers provide ultra-wideband (UWB), narrowband (NBW), and multiband (six-band) absorption characteristics through a metal–dielectric–metal layered architecture. The UWB behavior is achieved through strong resonant coupling and distributed surface currents induced by the BFSS geometry. A narrowband response is obtained by compressing the central gap into a lens-shaped region, which enhances localized field confinement and sharpens the resonance. By expanding the lens-shaped gap, a smooth and controllable transition from narrowband to UWB absorption is realized. For multiband operation, a wavy-edge resonant structure is introduced at the center of the BFSS, resulting in multiple discrete absorption peaks across the THz range. The proposed UWB TMMA achieves absorption greater than 90% over the frequency range of 2.5–9 THz, corresponding to a 7.5 THz quasi-continuous broadband response with a −10 dB bandwidth. Full-wave simulations performed using CST Microwave Studio evaluate the electromagnetic response, revealing a sharp resonance at 2.43 THz with 99.35% absorption. The narrowband TMMA is further analyzed for noninvasive blood glucose sensing, where it demonstrates excellent performance, including a high figure of merit (FOM) of 61.62, a low detection limit (DL) of 0.005 RIU (Refractive Index Unit), a signal-to-noise ratio (SNR) of 11.72, a dynamic range (DR) of 11.21 Mm, and a sensitivity of 6.78 THz RIU −1 . The sensing capability is validated using Debye and Cole–Cole biological tissue models by accounting for variations in glucose concentration, refractive index, and permittivity. Additionally, a six-band TMMA is developed, achieving near-unity absorption at 0.5, 1.5, 3, 4.5, 6.5, and 8 THz. The structures exhibit polarization insensitivity and maintain stable performance for incidence angles ranging from 0° to 80°, owing to the symmetric BFSS geometry. These results demonstrate that the proposed TMMAs offer strong potential for diverse terahertz applications, including imaging, biological sensing, and broadband electromagnetic control systems.
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