Efficient GHz electro-optical modulation with a nonlocal lithium niobate metasurface in the linear and nonlinear regime
Agostino Di Francescantonio, Alessandra Sabatti, Helena Weigand, Elise, Bailly, Maria Antonietta Vincenti, Luca Carletti, Jost Kellner, Attilio, Zilli, Marco Finazzi, Michele Celebrano, Rachel Grange

TL;DR
This paper demonstrates a lithium niobate metasurface capable of GHz-speed electro-optical modulation in both linear and nonlinear regimes, advancing flat optics modulation efficiency and speed for integrated photonics.
Contribution
It introduces a high-Q lithium niobate metasurface that achieves fast, efficient electrical modulation of optical properties in flat optics, surpassing previous bulk and integrated platform capabilities.
Findings
Achieved a reflectivity modulation of about 0.1 with >0.01 V^-1 efficiency at ~1 GHz bandwidth.
Demonstrated over an order of magnitude intensity modulation of second harmonic generation.
Resonances with linewidth <0.2 nm enable high-quality factor and fast modulation.
Abstract
Electro-optical modulation is widely employed for optical signal processing and in laser technology. To date, it is efficiently realized in integrated photonic systems as well as in bulk optics devices. Yet, the achievement of modulators exploiting Pockels effect in flat optics, essential to scale down the electric radiation-optical control in free space, currently lag behind bulk and on-chip integrated platforms in terms efficiency and speed. We bridge this gap realizing a metasurface based on lithium niobate (LiNbO3) on insulator that leverages on resonances with quality-factor as high as 8e3 to achieve fast electrical modulation of both linear and nonlinear optical properties. LiNbO3, well known for its high nonlinear susceptibility and wide transparency window across the infrared and visible spectrum, is employed to realize an asymmetric, one-dimensional array of nanowires,…
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Taxonomy
TopicsAdvanced Photonic Communication Systems · Advanced Antenna and Metasurface Technologies · Photonic and Optical Devices
