Picometer-Scale Spatial Symmetry Breaking in Active Transmissive Metasurfaces

Fuente: arXiv
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Main Authors: Thomaschewski, Martin, Sokhoyan, Ruzan, Schneider, Elisabetta, Atwater, Harry
Format: Preprint
Published: 2026
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author Thomaschewski, Martin
Sokhoyan, Ruzan
Schneider, Elisabetta
Atwater, Harry
author_facet Thomaschewski, Martin
Sokhoyan, Ruzan
Schneider, Elisabetta
Atwater, Harry
contents Active transmissive metasurfaces are central building blocks for future compact, cascadable optical systems, enabling the stacking of multiple functional layers for advanced dynamic beam shaping, photonic neural networks, depth sensing, and holography. We present a transmissive electro-optic metasurface based on silicon-on-lithium-niobate, where an array of silicon waveguides with periodic perturbations, individually controlled at the 100 pm scale, supports well-defined high-Q (>2000) guided-mode resonances (GMRs). We incorporate interdigitated push-pull electrodes between subwavelength-spaced GMR elements to locally tune the refractive index in the lithium niobate substrate, thereby shifting the GMR resonance and enabling opposite phase and amplitude modulation between neighboring radiative elements. In a geometrically symmetric metasurface, this effect introduces electro-optic beam splitting via diffraction, with diffraction efficiencies as high as 3%. By introducing controlled passive resonance detuning via 100 pm scale perturbation shifts, we increase the efficiency of amplitude modulation six-fold through geometrical symmetry breaking, achieving amplitude modulation depths of 40% at $\pm$30 V. This work demonstrates the potential of active and passive resonance control enabled by high-Q GMR structures for efficient electro-optic modulation or multifunctional sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2604_15185
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Picometer-Scale Spatial Symmetry Breaking in Active Transmissive Metasurfaces
Thomaschewski, Martin
Sokhoyan, Ruzan
Schneider, Elisabetta
Atwater, Harry
Optics
Active transmissive metasurfaces are central building blocks for future compact, cascadable optical systems, enabling the stacking of multiple functional layers for advanced dynamic beam shaping, photonic neural networks, depth sensing, and holography. We present a transmissive electro-optic metasurface based on silicon-on-lithium-niobate, where an array of silicon waveguides with periodic perturbations, individually controlled at the 100 pm scale, supports well-defined high-Q (>2000) guided-mode resonances (GMRs). We incorporate interdigitated push-pull electrodes between subwavelength-spaced GMR elements to locally tune the refractive index in the lithium niobate substrate, thereby shifting the GMR resonance and enabling opposite phase and amplitude modulation between neighboring radiative elements. In a geometrically symmetric metasurface, this effect introduces electro-optic beam splitting via diffraction, with diffraction efficiencies as high as 3%. By introducing controlled passive resonance detuning via 100 pm scale perturbation shifts, we increase the efficiency of amplitude modulation six-fold through geometrical symmetry breaking, achieving amplitude modulation depths of 40% at $\pm$30 V. This work demonstrates the potential of active and passive resonance control enabled by high-Q GMR structures for efficient electro-optic modulation or multifunctional sensing.
title Picometer-Scale Spatial Symmetry Breaking in Active Transmissive Metasurfaces
topic Optics
url https://arxiv.org/abs/2604.15185