4.6 Article

Broadband optical Ta2O5 antennas for directional emission of light

期刊

OPTICS EXPRESS
卷 30, 期 11, 页码 19288-19299

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Optica Publishing Group
DOI: 10.1364/OE.455815

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  1. Deutsche Forschungsgemeinschaft [TRR142, EXC 2004/1-390534769]
  2. Bundesministerium fur Bildung und Forschung [13N14150]
  3. Horizon 2020 Framework Programme [724306]

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This paper presents the design and optimization of three broadband traveling-wave antennas with highly directive characteristics. Through full-wave simulations and global optimization, structures with enhanced directivity up to 119 radiation and low-loss properties are obtained, which are in good agreement with experimental measurements.
Highly directive antennas with the ability of shaping radiation patterns in desired directions are essential for efficient on-chip optical communication with reduced cross talk. In this paper, we design and optimize three distinct broadband traveling-wave tantalum pentoxide antennas exhibiting highly directional characteristics. Our antennas contain a director and reflector deposited on a glass substrate, which are excited by a dipole emitter placed in the feed gap between the two elements. Full-wave simulations in conjunction with global optimization provide structures with an enhanced linear directivity as high as 119 radiating in the substrate. The high directivity is a result of the interplay between two dominant TE modes and the leaky modes present in the antenna director. Furthermore, these low-loss dielectric antennas exhibit a near-unity radiation efficiency at the operational wavelength of 780 nm and maintain a broad bandwidth. Our numerical results are in good agreement with experimental measurements from the optimized antennas fabricated using a two-step electron-beam lithography, revealing the highly directive nature of our structures. We envision that our antenna designs can be conveniently adapted to other dielectric materials and prove instrumental for inter-chip optical communications and other on-chip applications. (C) 2022 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement

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