HIGH-GAIN PLANAR LENS ANTENNAS BASED ON TRANSFORMATION OPTICS AND SUBSTRATE-INTEGRATED WAVEGUIDE (SIW) TECHNOLOGY
Author(s) -
Iman Aghanejad,
Habibollah Abiri,
Alireza Yahaghi
Publication year - 2016
Publication title -
progress in electromagnetics research c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.341
H-Index - 34
ISSN - 1937-8718
DOI - 10.2528/pierc16070807
Subject(s) - planar , waveguide , lens (geology) , substrate (aquarium) , transformation (genetics) , materials science , optics , optoelectronics , integrated optics , physics , computer science , geology , chemistry , biochemistry , oceanography , computer graphics (images) , gene
Transformation of space coordinates is a tool to synthesize material properties in view of obtaining a controlled electromagnetic field pattern. Also, substrate-integrated waveguide (SIW) technology can well be exploited to develop microwave and millimeter-wave components. In this paper, by combining these features, high-gain SIW planar lens antennas are proposed. Using the embedded transformation-optics lenses, both narrow beamwidth of 12◦ and low sidelobe levels of −23 dB are achieved for the H-plane radiation patterns by a single antenna. The designed transformation-optics lenses can be realized by drilling spatially varying cylindrical holes in an ordinary dielectric substrate. The E-plane radiation patterns can also be improved through the dielectric slabs in front of the antenna aperture integrated in the same substrate. Therefore, using SIW technology, the lens antennas can be fabricated on a single substrate. An H-plane sectoral horn and a Maxwell-fisheye-based lens antenna are designed using the proposed method. Simulation results confirm the validity of the proposed idea and the advantages of these lens antennas.
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