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Abstract
Optical antennas are a fundamental element in optical phased arrays (OPA) and free-space optical interconnects. An outstanding challenge in optical antenna design lies in achieving high radiation efficiency, ultra-compact footprint and broad radiation angle simultaneously, as required for dense 2D OPAs with a broad steering range. Here, we demonstrate a fundamentally new concept of a nanophotonic antenna based on near-field phase-engineering. By introducing a specific near-field phase factor in the Fraunhofer transformation, the far-field beam is widened beyond the diffraction limit for a given aperture size. We use transversally interleaved subwavelength grating nanostructures to control the near-field phase. A Bragg reflector is used at the end of the grating to increase both the efficiency and the far-field beam width. The antenna has a compact footprint of 3.1 µm × 1.75 µm and an ultra-broad far-field beam width of 52° and 62° in the longitudinal and transversal direction, respectively, while the radiation efficiency reaches 82% after incorporating a bottom reflector to further improve the directionality. This unprecedented design performance is achieved with a single-etch grating nanostructure in a 300-nm SOI platform.
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Details
1 Carleton University, Department of Electronics, Ottawa, Canada (GRID:grid.34428.39) (ISNI:0000 0004 1936 893X)
2 CNRS, Université Paris-Saclay, Centre for Nanoscience and Nanotechnologies, Palaiseau, France (GRID:grid.4444.0) (ISNI:0000 0001 2112 9282)
3 National Research Council Canada, Advanced Electronics and Photonics Research Center, Ottawa, Canada (GRID:grid.24433.32) (ISNI:0000 0004 0449 7958)