论文标题
在微波频率处使用自偏非线跨表面的空间波控制
Spatial Wave Control Using a Self-biased Nonlinear Metasurface at Microwave Frequencies
论文作者
论文摘要
最近,通过利用非线性,对元表面的研究已扩展到波浪控制。在实现具有多重性能的可调式元面的所有方法中,非线性是有希望的选择之一。尽管据报道有几项建议在可见的频率下获得非线性架构,但在微波跨空面上以被动设计形式纳入非线性的领域开放供研究。在本文中,表现出一个被动宽带非线性跨表面,由带有PIN-二极管元素的嵌入式L形和γ形元原子组成。所提出的自偏非线性跨表面具有两个操作状态:在低功率强度下,它充当四分之一波板(QWP)的频率范围从13.24 GHz到16.38 GHz,轴向比(AR)超过21.2%。相比之下,在高功率强度下,通过使用所提出的基于PIN-DIODE的元原子的极化转换属性,元图可以充当数字元表面。这意味着,通过以一定的编码模式排列元原子,元表面可以操纵散射的光束并合成众所周知的模式,例如在8.12 GHz至19.27 GHz的超宽频率范围内的扩散样式(BW = 81.4%)。进行全波和非线性模拟,以证明宽带非线性跨表面的性能是合理的。我们希望在微波频率下提议的自偏非线性跨表面揭示了设计限制器元信息和紧凑型重新配置成像系统的绝佳机会。
Recently, the investigation of metasurface has been extended to wave control through exploiting nonlinearity. Among all of the ways to achieve tunable metasurfaces with multiplexed performances, nonlinearity is one of the promising choices. Although several proposals have been reported to obtain nonlinear architectures at visible frequencies, the area of incorporating nonlinearity in form of passive-designing at microwave metasurfaces is open for investigation. In this paper, a passive wideband nonlinear metasurface is manifested, which is composed of embedded L-shape and Γ-shape meta-atoms with PIN-diode elements. The proposed self-biased nonlinear metasurface has two operational states: at low power intensities, it acts as Quarter Wave Plate (QWP) in the frequency range from 13.24 GHz to 16.38 GHz with an Axial Ratio (AR) of over 21.2%. In contrast, at high power intensities, by using the polarization conversion property of the proposed PIN-diode based meta-atoms, the metasurface can act as a digital metasurface. It means that by arranging the meta-atoms with a certain coding pattern, the metasurface can manipulate the scattered beams and synthesize well-known patterns such as Diffusion-like pattern at an ultra-wide frequency range from 8.12 GHz to 19.27 GHz (BW=81.4%). Full-wave and nonlinear simulations are carried out to justify the performance of the wideband nonlinear metasurface. We expect the proposed self-biased nonlinear metasurface at microwave frequencies reveals excellent opportunities to design limiter metasurfaces and compact reconfigurable imaging systems.