4.7 Article

Circularly Polarized Antenna Array with Decoupled Quad Vortex Beams

期刊

NANOMATERIALS
卷 12, 期 17, 页码 -

出版社

MDPI
DOI: 10.3390/nano12173083

关键词

antenna array; orbital angular momentum (OAM); vortex beam; multiple beams

资金

  1. National Natural Science Foundation of China [62171459]
  2. National Defense Foundation of China [2019-JCJQ-JJ-081]
  3. Key Program of Natural Science Foundation of Shaanxi Province [2020JZ-33]
  4. Special Talents Support Program of Shaanxi Province for Young Top Talents

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This study proposes a hybrid method to achieve multiple vortex beams with different modes in a planar microstrip array, which has great significance for wireless and radar communication systems.
Achieving multiple vortex beams with different modes in a planar microstrip array is pivotal, yet still extremely challenging. Here, a hybrid method combining both Pancharatnam-Berry (PB) phase that is induced by the rotation phase and excitation phase of a feeding line has been proposed for decoupling two orthogonal circularly polarized vortex beams. Theoretical analysis is derived for array design to generate quad vortex beams with different directions and an arbitrary number of topological charges. On this basis, two 8 x 8 planar arrays were theoretically designed in an X band, which are with topological charges of l(1) = -1, l(2) = 1, l(3) = -1, and l(4) = 1 in Case I and topological charges of l(1) = -1, l(2) = 1, l(3) = -1, and l(4) = 1 in Case II. To further verify the above theory, the planar array in Case I is fabricated and analyzed experimentally. Dual-LP beams are realized by using rectangular patch elements with two orthogonally distributed feeding networks on different layers based on two types of feeding: proximity coupling and aperture coupling. Both the numerical simulation and experimental measurement results are in good agreement and showcase the corresponding quad-vortex-beam characteristics within 8 similar to 12 GHz. The array achieves a measured S-11 < -10 dB and S-22 < -10 dB bandwidth of more than 33.4% and 29.2%, respectively. In addition, the isolation between two ports is better than -28 dB. Our strategy provides a promising way to achieve large capacity and high integration, which is of great benefit to wireless and radar communication systems.

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