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September 10, 2025Research37 citationsOpen Access

Topological and reconfigurable terahertz metadevices

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ZZZihan ZhaoHWHongwei WangGHGuangwei Hu

Key Points

  • Topological THz metadevices enable robust waveguiding and low-loss wave propagation for efficient communication.
  • These devices suppress backscattering, essential for high-frequency operation in next-gen 6G systems.
  • Advanced materials like liquid crystals and phase-change materials enhance the reconfigurability of these metadevices.
  • Integration of topological properties with reconfigurability opens new avenues for sensing applications and real-time control.

Abstract

The terahertz (THz) frequency range, situated between microwave and infrared radiation, has emerged as a pivotal domain with broad applications in high-speed communication, imaging, sensing, and biosensing. The development of topological THz metadevices represents a notable advancement for photonic technologies, leveraging the distinctive electronic properties and quantum-inspired phenomena inherent to topological materials. These devices enable robust waveguiding capabilities, positioning them as critical components for on-chip data transfer and photonic integrated circuits, particularly within emerging 6G communication frameworks. A principal advantage resides in the capacity to maintain low-loss wave propagation while effectively suppressing backscattering phenomena, a critical requirement for functional components operating at higher frequencies. In parallel, by leveraging advanced materials such as liquid crystals, plasma, and phase-change materials, these devices facilitate real-time control over essential wave parameters, including amplitude, frequency, and phase, which augments the functionality of both communication and sensing systems, opening new avenues for THz-based technologies. This review outlines fundamental principles of topological components and reconfigurable metadevices operating at THz frequencies. We further explore emerging strategies that integrate topological properties and reconfigurability, with a specific focus on their implementation in chip-scale photonic circuits and free-space wavefront control.

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Cite This Study

Zhao et al. (2025) studied this question.

synapsesocial.com/papers/68c1c9e454b1d3bfb60f34cahttps://doi.org/10.34133/research.0882
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