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Gigahertz directional light modulation with electro-optic metasurfaces

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arxiv 2501.06102 v1 pith:SCA4KBQJ submitted 2025-01-10 physics.optics physics.app-ph

Gigahertz directional light modulation with electro-optic metasurfaces

classification physics.optics physics.app-ph
keywords controllightopticalelectro-opticmetasurfacesmodulationplasmonicconfinement
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Active metasurfaces promise spatiotemporal control over optical wavefronts, but achieving high-speed modulation with pixel-level control has remained an unmet challenge. While local phase control can be achieved with nanoscale optical confinement, such as in plasmonic nanoparticles, the resulting electrode spacings lead to large capacitance, limiting speed. Here, we demonstrate the operation of a gigahertz-tunable metasurface for beam steering through local control of metasurface elements in a plasmonic-organic hybrid architecture. Our device comprises a corrugated metallic slot array engineered to support plasmonic quasi-bound states in the continuum (quasi-BICs). These plasmonic quasi-BICs provide ideal optical confinement and electrical characteristics for integrating organic electro-optic (OEO) materials like JRD1 and have not been previously utilized in optical metasurfaces. We obtain a quasi-static resonance tunability of 0.4 nm/V, which we leverage to steer light between three diffraction orders and achieve an electro-optic bandwidth of ~4 GHz, with the potential for further speed improvements through scaling rules. This work showcases on-chip spatiotemporal control of light at the sub-micrometer and gigahertz level, opening new possibilities for applications in 3D sensing and high-speed spatial light modulation.

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  1. Hybrid BaTiO3/TiO2 Metasurface for Efficient Gigahertz-Speed Free-Space Electro-Optic Modulation

    physics.optics 2026-07 conditional novelty 7.0

    A hybrid BTO/TiO2 metasurface modulator achieves ~0.020 V^-1 transmittance efficiency, ~0.8 GHz bandwidth, and 0.3 mm aperture simultaneously using RF-sputtered BaTiO3.