基于对称裂环谐振腔的双宽带交叉极化转换超表面

Yong-Qiang Liu, Xunwang Dang, Liangsheng Li, Hongcheng Yin
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引用次数: 1

摘要

偏振转换超表面从微波光谱到光谱都得到了广泛的研究,并得到了许多实际应用。本文提出并研究了一种双波段高效交叉极化转换超表面。交叉极化超表面单元是基于一个穿孔的对称圆形双裂环谐振器,该谐振器沉积在由金属片支撑的电介质上。基于有限积分法优化的数值模拟结果表明,所设计的双频交叉极化超表面能在Ku波段(11.85 GHz ~ 18.42 GHz)和K波段(20.76 GHz ~ 21.34 GHz)有效地将线极化入射波转换为其交叉反射方向,频谱为3 dB。第一反射光谱的交叉偏振转换分数带宽在50%以上,而第二反射光谱则相对窄带。此外,所提出的超表面结构对入射波的偏振不敏感。研究了大斜入射角下的交叉偏振转换响应。结果表明,所提出的交叉极化转换超表面结构对入射角不敏感,即使在60°大斜入射角下,其交叉极化转换性能也基本保持不变。制作样品正在进行中,稍后将测量结果与模拟结果进行比较。对多孔对称圆形双裂口环的研究可以在具有相对宽带宽、高效率、对入射波偏振光方向和斜角不敏感的偏振控制器件中找到许多潜在的应用。
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Dual-wideband Cross Polarization Conversion Metasurface Based on a Symmetric Split Ring Resonator
Polarization conversion metasurface has been widely studied from microwave to optical spectrum and utilized for many practical applications. In this paper, a dual-band and high-efficiency cross polarization conversion metasurface is proposed and investigated. Cross polarization metasurface unit is based on a perforated symmetric circular double split ring resonator which is deposited on a dielectric backed by a metal sheet. The proposed dual-band cross polarization metasurface can efficiently convert linearly polarized incident wave to its cross reflection direction with a 3 dB spectrum at Ku band (11.85 GHz ~ 18.42 GHz) and K band (20.76 GHz ~ 21.34 GHz) according to the optimized numerical simulation results based on finite integration method, respectively. The cross polarization conversion fractional bandwidth of the first reflective spectrum is above 50% while the second reflective spectrum is relatively narrowband. Besides, the proposed metasurface structure is insensitive to the polarization of the incident wave. The cross polarization conversion response to large oblique incident angle is also examined and investigated. It is shown that the proposed cross polarization conversion metasurface structure is insensitive to incident angle and its cross polarization conversion performance keeps almost constant even with 60° large oblique incident angle. The fabricated sample is in progress and the measured results will be compared with simulated results later. The proposed studies on the perforated symmetric circular double split ring can find many potential applications in polarization-controlled devices which possess relative broad bandwidth, high-efficiency, insensitive to polarized direction and oblique angle of incident wave.
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