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March 4, 2026Journal of Applied Physics2 citationsOpen Access

3D-printed mechanically reconfigurable all-dielectric metagrating for terahertz filters

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HLHyoung-Taek LeeSLS. J. LeeJKJunsu Kim

Key Points

  • To explore a novel 3D-printed all-dielectric metagrating for creating tunable terahertz filters through mechanical reconfiguration.
  • Developed a mechanical structure consisting of supporting bars and vertical grating elements.
  • Implemented controlled lateral displacements to tilt the grating elements.
  • Performed numerical simulations alongside experimental observations to validate findings.
  • Achieved a 15% frequency modulation in the transmission dip frequency.
  • Observed a 95% modulation in transmission efficiency with grating tilting.
  • Simulation results aligned closely with experimental outcomes.

Abstract

We demonstrate a mechanically reconfigurable terahertz filter implemented by the 3D-printed all-dielectric metagrating, providing a versatile platform for adaptive photonic devices. The structure consists of parallel supporting bars connected by vertical grating elements, forming a lattice that can be mechanically reconfigured. By applying a controlled lateral displacement to the supporting bars, the grating elements are tilted, effectively reducing the grating period and inducing a systematic blue shift in the transmission dip frequency. By tilting the metagrating, we experimentally observed a 15% frequency modulation and a 95% transmission modulation. The numerical simulations show consistent results with the experimental results. In contrast to conventional approaches that rely on refractive index modulation, phase-change materials, or other active tuning mechanisms, this method achieves tunability purely through geometric reconfiguration. This strategy offers a simple, low-cost, and robust route to dynamic terahertz filtering, and it can be readily extended to other reconfigurable metamaterials and photonic devices requiring adaptive control of their optical response.

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Cite This Study

Lee et al. (2026) studied this question.

synapsesocial.com/papers/69a7ccd5d48f933b5eed8b69https://doi.org/10.1063/5.0309175
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