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September 12, 2025Advanced Functional Materials21 citationsOpen Access

Phase Change Material‐Driven Tunable Metasurface for Adaptive Terahertz Sensing and Communication in 6G Perceptive Networks

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YTYat Sing ToJDJiachen DuCDCyril Decroze

Key Points

  • The study shows that the novel metasurface delivers adaptive terahertz communication, improving object detection capabilities.
  • Prominent outcomes include the ability to dynamically reconfigure, achieving extensive coverage in sub-terahertz channels.
  • Utilizing a pioneering single-layer metasurface, the method eliminates the complexity and losses seen with multilayer designs.
  • These findings indicate significant potential for efficient, adaptive 6G connectivity across various advanced technology applications.

Abstract

Abstract Terahertz (THz) wireless technology offers unprecedented capabilities in sensing, imaging, and communication for 6G perceptive networks. Recent reconfigurable THz metasurfaces enable adaptive beam manipulation, supporting diverse functionalities like frequency, polarization, spatial, and temporal adjustments for rapid communications and object tracking. However, these are hindered by multilayer complexity, insertion losses, and scalability challenges. Here, it is overcome these constraints by realizing a pioneering single‐layer, optically activated tunable metasurface incorporating Germanium Telluride ( GeTe ) material, acquiring multifunctional THz sensing, imaging, and communication within a unified platform for the first time. GeTe ’s low‐power, non‐volatile switching facilitates dynamic reconfiguration, eliminating bulky bias networks of traditional THz metasurfaces. This measured metasurface delivers an adaptive sub‐THz communication channel with extensive coverage and enhanced passive object detection via wide frequency‐dispersive scanning. Leveraging phase‐change material‐driven tunability, this antenna technique enables efficient, adaptive 6G connectivity and high‐precision localization, with transformative potential for low Earth orbit networks, smart cities, and advanced Internet of Things (IoT).

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Cite This Study

To et al. (2025) studied this question.

synapsesocial.com/papers/68d44b2231b076d99fa54100https://doi.org/10.1002/adfm.202515085
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