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This paper presents a multifunctional terahertz device based on a dual-tunable structure incorporating graphene and vanadium oxide (VO). This device enables the switching between narrowband perfect absorption and ultra-broadband performance through the phase transition characteristics of VO and the adjustment of graphene Fermi level. Simulation results demonstrate that when VO is in its metallic state, the THz device exhibits ultra-broadband absorption, achieving a high absorption rate exceeding 0.9 within the frequency range of 2.9-7.67 THz. Conversely, when VO is in its insulating state, the THz device displays perfect absorption peaks at 2.8 and 8.41 THz. In the broadband mode, the absorption band can be broadened to an ultra-broadband range by adjusting the Fermi level of graphene. Furthermore, the structural parameters of terahertz devices, as well as the incident and polarization angles of electromagnetic waves, were investigated. The results demonstrated that the terahertz devices exhibit a certain degree of manufacturing tolerance, stability against variations in incident angles, and favorable polarization insensitivity. Overall, this design holds promising application prospects in fields such as terahertz absorption, refractive index sensing, and terahertz detection.
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http://dx.doi.org/10.1039/d5na00278h | DOI Listing |
Phys Chem Chem Phys
September 2025
College of Materials Science and Engineering, Hohai University, Nanjing 210098, China.
The integration of terahertz (THz) technology with metasurfaces has attracted attention as it enables the fabrication of compact, high-performance, and tunable photonic devices. However, extensive investigation of metasurfaces was limited to a narrow THz range or manipulating a single mode of electromagnetic waves, absorption, reflection, or transmission, without achieving multi-band or broadband switching. This capability constrains metasurface adaptability in modern and reconfigurable systems.
View Article and Find Full Text PDFWe propose a Φ-shaped resonator nested with VO patches to achieve dual-band switchable phase modulation in the terahertz range. The sample is fabricated using a surface micromachining process and characterized by a terahertz time-domain spectrometer. The results indicate that, when the VO is in the insulated state, two resonance peaks at 0.
View Article and Find Full Text PDFNanoscale Horiz
August 2025
School of Mathematics and Science, Southwest University of Science and Technology, Mianyang 621010, China.
Terahertz (THz) absorbers with ultra-broadband and ultra-narrowband absorption capabilities are crucial for integrated and efficient terahertz modulation. This study proposes a dual-mode tunable terahertz absorber based on the phase transition characteristics of vanadium dioxide (VO), enabling dynamic switching between narrowband and broadband absorption through its insulating-to-metallic transition. In the insulating state, the excitation of quasi-bound states in the continuum (Q-BIC) resonance geometric parameter modulation of silicon pillars is investigated, with its physical mechanism elucidated impedance matching theory and multipole analysis.
View Article and Find Full Text PDFOpt Express
March 2025
Despite striking advances in terahertz (THz) sources and detectors, the exploitation of active materials that can alter their properties in response to external excitations for the manipulation of THz waves is another major issue. Here, freestanding and easily scalable composite film based on vanadium dioxide/carboxymethyl cellulose (VO/CMC) is proposed to realize thermally and optically tunable THz waves. This VO/CMC composite film exhibits broadband modulation with a modulation depth of up to 76%, a response time of about 1.
View Article and Find Full Text PDFOpt Express
March 2025
This paper presents a multifunctional reflective polarization converter based on a metasurface, tailored for efficient and versatile polarization and phase manipulation in the terahertz frequency range. The proposed design excels in polarization multiplexing by integrating multiple conversion functions across two frequency bands It achieves precise deflection for linearly polarized waves and efficient mutual conversion between right-handed and left-handed circularly polarized waves in the 1.13-1.
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