A Spoof Surface Plasmon Polaritons Frequency Scanning Antenna Based on Coplanar Waveguides

Zhen Wang, Xiao Yu Li, X. Lu, Jingrui Duan, M. Tong
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Abstract

In this paper, a novel spoof surface plasmon polaritons frequency scanning antenna is proposed. A specific periodic structure in the substrate integrated waveguide (SIW) is constructed to realize the surface wave with the characteristics of surface plasmon dispersion similar to those of optical band. An impedance transition structure is then designed to gradually convert a spatially-guided wave in the coplanar waveguide into a surface wave mode in the groove periodic structure. The surface wave is a slow wave and does not have a leakage emission, so a periodic modulation is needed to produce leakage-radiation characteristics. By constructing the cosine periodic groove on the inner conductor of the surface-wave transmission line based on the SIW, the surface wave can be transformed into a space wave so that the frequency-sweeping characteristics of the leakage wave antenna with a directional pattern can be realized. Simulation results show that the antenna can achieve a bidirectional scanning range from −16° to 65° over a frequency band of 4 – 8 GHz, and the maximum gain is 13 dBi. Also, the periodic modulation structure is embedded in the inner conductor part of the coplanar waveguide, so it is simple and easy to be integrated.
基于共面波导的欺骗表面等离子体激元频率扫描天线
本文提出了一种新型的欺骗表面等离子体激元频率扫描天线。在衬底集成波导(SIW)中构造了一个特定的周期结构,以实现具有类似于光带的表面等离子体色散特性的表面波。然后设计了阻抗过渡结构,将共面波导中的空间导波逐渐转换为槽周期结构中的表面波模式。表面波是一种慢波,没有泄漏发射,因此需要周期性调制来产生泄漏辐射特性。通过在表面波传输线的内导体上构造基于SIW的余弦周期槽,将表面波转化为空间波,从而实现泄漏波天线定向方向图的扫频特性。仿真结果表明,该天线在4 ~ 8 GHz频段内可实现- 16°~ 65°的双向扫描,最大增益为13 dBi。周期调制结构嵌入在共面波导的内导体部分,结构简单,易于集成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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