Photonic Gap Antennas Based on High Index-Contrast Slot-Waveguides
Ashutosh Patri, K\'evin G. Cogn\'ee, Louis Haeberl\'e, Vinod Menon,, Christophe Caloz, St\'ephane K\'ena-Cohen

TL;DR
This paper introduces Photonic Gap Antennas (PGAs) based on high index-contrast slot-waveguides, achieving strong light confinement, high quantum efficiency, and enhanced emission and reception properties through innovative dielectric structures.
Contribution
The paper presents a novel all-dielectric antenna design supporting highly confined modes with enhanced light-matter interaction, unidirectional radiation, and significant emission and field enhancements.
Findings
Enhanced spontaneous emission rate by up to 1000x for air gaps.
Achieved unidirectional out-of-plane radiation.
Near-field intensity enhancement up to 3000x for air gaps.
Abstract
Optical antennas made of low-loss dielectrics have several advantages over plasmonic antennas, including high radiative quantum efficiency, negligible heating and excellent photostability. However, due to weak spatial confinement, conventional dielectric antennas fail to offer light-matter interaction strengths on par with those of plasmonic antennas. We propose here an all-dielectric antenna configuration that can support strongly confined modes () while maintaining unity antenna quantum efficiency. This configuration consists of a high-index pillar structure with a transverse gap that is filled with a low-index material, where the contrast of indices induces a strong enhancement of the electric field perpendicular to the gap. We provide a detailed explanation of the operation principle of such Photonic Gap Antennas (PGAs) based on the dispersion relation of…
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