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February 26, 2026Nanomaterials0 citationsOpen Access

Polarization-Insensitive Electro-Optic Modulator for the Terahertz Regime Enabled by a Graphene-Hybrid Plasmonic Waveguide

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XZXia ZhouSouth China Normal UniversityCLCaijing LiuTianjin UniversityYLYong LiBGI Group (China)

Key Points

  • To develop a polarization-insensitive electro-optic modulator for terahertz applications using a graphene-hybrid plasmonic waveguide.
  • Designed an inverted U-shaped structure for mode control
  • Conducted Fermi level tuning to achieve desired modulation levels
  • Tested device performance at frequencies around 3 THz
  • Assessed compatibility with CMOS technology
  • Achieved maximum attenuation of 0.247 dB/μm at an Fermi level of 0.3 eV
  • Demonstrated minimum attenuation of 0.026–0.028 dB/μm at 1.0 eV
  • Showed low polarization-dependent modulation error of 0.002 dB/μm
  • Indicated effective operation at 2.5 THz

Abstract

A polarization-insensitive compact optical modulator based on a graphene-hybrid surface plasmon polariton waveguide is proposed. The inverted U-shaped structure enables the synchronous control of TE/TM modes via Fermi level tuning, achieving a maximum attenuation of 0.247 dB/μm (Ef = 0.3 eV) and a minimum attenuation of 0.026–0.028 dB/μm (Ef = 1.0 eV) at 3 THz, with a polarization-dependent modulation error of only 0.002 dB/μm. The 100 μm × 30 μm device operates effectively at 2.5 THz (120 μm), demonstrating its potential for integrated photonic circuits. Additionally, the proposed modulator is compatible with Complementary Metal-Oxide-Semiconductor (CMOS) technology. The excellent ultra-broadband modulation performance of the graphene-hybrid plasmonic waveguide (GHPW) thereby paves the way for high-speed communication, non-destructive testing, biomedical sensing and optical computing.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/699fe3f995ddcd3a253e811ahttps://doi.org/10.3390/nano16050288
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