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April 26, 2026Photonics2 citationsOpen Access

Dual-Mode Tunable Near-Perfect Terahertz Absorber Based on GST Micro-Cavity

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DLD. J. LiCCChenyang CuiFGFan Guo

Key Points

  • This work aims to develop a tunable terahertz metamaterial absorber using a phase-change material for enhanced absorption characteristics.
  • Demonstrated a metal-insulator-metal triple-layer structure with GST for tunable absorption.
  • Utilized thermally controlled phase transitions to switch between absorption states.
  • Performed full-wave electromagnetic simulations and theoretical analysis.
  • Achieved single absorption peak at 7.7 THz in the amorphous state.
  • Demonstrated dual absorption peaks at 5.1 THz and 8.3 THz upon crystallization.
  • Realized near-perfect absorption in both amorphous and crystalline states.

Abstract

A micro-cavity based on phase-change material is a very important strategy for the realization of tunable absorption and conversion of terahertz waves. In this work, a tunable terahertz metamaterial absorber based on the phase-change material germanium–antimony–tellurium (GST) is demonstrated. The device features a metal–insulator–metal triple-layer structure, where the dynamic switching of absorption characteristics is achieved via thermally controlled GST phase transition. In the amorphous state, the absorber exhibits a single absorption peak at 7.7 THz. Upon crystallization, the absorption switches to dual peaks at 5.1 THz and 8.3 THz, achieving near-perfect absorption in both states. Full-wave electromagnetic simulations and theoretical analysis based on a multiple-reflection interference model indicate that this performance tuning originates from the GST-phase-transition-induced change in the equivalent optical cavity length. This corresponds to a switch between two resonant modes: coupled inner–outer ring resonance and independent outer ring resonance. These results provide a foundation for developing dynamically tunable terahertz devices with promising applications in terahertz communications, imaging, and sensing.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69edad4b4a46254e215b4f11https://doi.org/10.3390/photonics13050413
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