Broadband field-enhancement in epsilon-near-zero photonic gap antennas
F\'elix Thouin, David M. Myers, Ashutosh Patri, Bill Baloukas, Ludvik, Martinu, and St\'ephane K\'ena-Cohen

TL;DR
This paper introduces a novel epsilon-near-zero photonic gap antenna (ENZ PGA) that achieves large electric field enhancements over broad bandwidths through hybrid dielectric-ENZ modes, with potential applications in nonlinear optics.
Contribution
The paper experimentally demonstrates a new ENZ PGA design that combines dielectric and ENZ modes for efficient broadband electric field enhancement without complex nanofabrication.
Findings
Large electric field enhancement over nearly an octave bandwidth.
Efficient third harmonic generation observed across broad spectral range.
Hybrid dielectric-ENZ modes enable strong free-space coupling without nanofabrication constraints.
Abstract
In recent years, the large electric field enhancement and tight spatial confinement supported by the so-called epsilon-near-zero (ENZ) mode have attracted significant attention for the realization of efficient nonlinear optical devices. Here, we experimentally demonstrate a new type of antenna, termed an ENZ photonic gap antenna (PGA), which consists of a dielectric pillar within which a thin slab of indium tin oxide (ITO) material is embedded. In ENZ PGAs, hybrid dielectric-ENZ modes emerge from strong coupling between the dielectric antenna modes and the ENZ bulk plasmon resonance. These hybrid modes efficiently couple to free space and allow for large enhancements of the incident electric field over nearly an octave bandwidth, without the stringent lateral nanofabrication requirements required by conventional plasmonic or dielectric nanoantennas. The linear response of single ENZ…
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Taxonomy
TopicsPlasmonic and Surface Plasmon Research · Photonic Crystals and Applications · Photonic and Optical Devices
