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◆ Physical chemistry chemical physics : PCCP2026-08-26

A dual-mode ultrabroadband terahertz absorbing metasurface for linear and circular polarization.

Yanpeng Zhang, Xuehong Sun, Jie Hu, Liping Liu, Guoche Qin

原始摘要(英文原文)· Original abstract
Terahertz metasurfaces are promising platforms for compact sensing, imaging, and communication systems; however, ultrathin absorbers that combine broadband absorption, circular-polarization selectivity, and active reconfigurability remain limited. Here, we propose a VO2-controlled dual-mode terahertz absorbing metasurface comprising a VO2 functional layer, a TOPAS spacer, an in-plane asymmetric chiral metallic/high-impedance-surface resonant layer, an MF2 dielectric layer, and an Au ground plane. The chiral resonant layer produces handedness-dependent near-field coupling, whereas the VO2 phase transition reconfigures the interlayer conductive pathways and impedance-matching conditions. Numerical simulations show that, with VO2 in the insulating state, the metasurface selectively absorbs right-handed circularly polarized (RCP) waves, with an absorptance above 90% from 1.58 to 3.79 THz, while the absorptance for left-handed circularly polarized (LCP) waves remains low. The circular dichroism exceeds 0.8 from 1.60 to 3.65 THz. When VO2 switches to the metallic state, the handedness-dependent contrast is reduced, and the metasurface exhibits broadband absorption for both circular polarizations. Under linearly polarized incidence, metallic VO2 enables broadband absorption in the transverse-electric (TE) channel from 1.45 to 4.45 THz and maintains a strong transverse-magnetic (TM) response over a broad frequency range. This numerical design may provide a route towards reconfigurable terahertz absorbers for polarization-resolved detection and broadband functional devices.
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A dual-mode ultrabroadband terahertz absorbing metasurface for linear and circular polarization. — 科研速览 Science Skim