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Active absorption modulation is critical for advanced stealth technologies, especially given the emerging detection threat from terahertz atmospheric windows. However, due to the difficulty in balancing high absorption and tunability, the actual manufacturing of most terahertz absorbers usually neglects the integration of electrical tuning, which limits their development of dynamic wave trapping for electronic countermeasure systems. Here, a terahertz stealth metamaterial (TSM) with hierarchical ionotronic architecture is proposed to overcome the tradeoff. Large-area continuous MoS assemblies tightly attached poly(ionic liquid) (PIL) microarrays provide enough conditions for surface electron conduction and plasmon mode excitation. By establishing wave-electron-ion interaction pathways, the directional migration of free anions inside the PIL and the accumulation of excess charge carriers up to 100.4% at the MoS interfaces are promoted, thereby stimulating changes in the plasma frequency of the absorption system. Consequently, this micro-nano structural design enhances the absorption tunability and combines multiple dissipative behaviors. TSM exhibit high specific attenuation (-275 dB mm), frequency agility (21.4%), and phase switching (153.1 deg.) within terahertz atmospheric windows. Moreover, the template-assisted assembly strategy adopted has the potential to be used for the building of universal blocks operating within other frequency ranges.
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http://dx.doi.org/10.1002/adma.202503607 | 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 PDFPhilos Trans A Math Phys Eng Sci
August 2025
V N Karazin Kharkiv National University, Kharkiv, Ukraine.
We study the modification of the radar cross section (RCS) of a circular dielectric cylinder with coplanar graphene strips inside, focusing on the variation of the chemical potential and the excitation of associated plasmon resonances. The scattering and absorption of the H-polarized plane wave in the THz and infrared frequency range, up to 55 THz, are considered. The mathematically grounded method of hyper-singular integral equations and the meshless Nystrom-type algorithm are used.
View Article and Find Full Text PDFOpt Express
February 2025
We designed and fabricated a highly deformable and high-performance optical paper-based perovskite (CHNHPbBr) terahertz modulator. Broadband modulation of the terahertz transmission and reflection in the device reached 30% and 50%, respectively, which represents superior modulation performance to that of quartz-based polycrystalline film and quartz-based CHNHPbBr polycrystalline samples. Bending measurements revealed the paper-based device's strong bending stability.
View Article and Find Full Text PDFStealth and camouflage technology in the infrared band has been a topic of wide interest in recent years. Wave propagation direction control is an important technology to achieve electromagnetic stealth. One-dimensional photonic crystals (1D PhC) composed of isotropic and anisotropic dielectric is an approach for achieving orientation selection.
View Article and Find Full Text PDFIn this paper, an ultra-bandwidth/dual-narrowband switchable metamaterial absorber (MMA) is proposed for bandwidth and dual-narrowband absorption in the terahertz (THz) band based on the phase transition properties of vanadium dioxide (). When is in the metallic state, the MMAs can achieve more than 90% broadband absorption in the range of 3.98-10.
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