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首页> 外文期刊>Journal of Applied Physics >Volumetric negative-refractive-index metamaterials based upon the shunt-node transmission-line configuration
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Volumetric negative-refractive-index metamaterials based upon the shunt-node transmission-line configuration

机译:基于并联节点传输线配置的体积负折射率超材料

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A volumetric negative-refractive-index transmission-line (NRI-TL) metamaterial is presented. This structure constitutes a natural extension of the planar NRI-TL metamaterials1 and maintains the desired features of broad bandwidth and low transmission loss. Unlike their planar counterparts, the proposed volumetric NRI-TL metamaterials can effectively couple incident plane waves from free space. The proposed topology can be readily made by stacking layers that are individually fabricated using standard multilayer printed-circuit board techniques at microwave frequencies. However, the creation of the volumetric structure results in the presence of a parasitic parallel-plate mode. This mode can interfere with the desired backward wave mode of the metamaterial, causing a stop band to appear. To facilitate the rapid analysis of this new design, a multiconductor transmission line model was developed. Through the use of this model and full-wave simulations, it will be demonstrated that this unwanted parallel-plate mode can be eliminated by properly arranging the vertical inductive loading wires. Using this process, it will be shown that a properly designed inductive load can result in a practical NRI metamaterial slab which is matched to free space over a large bandwidth (22%) and with low insertion loss (< -l dB). This approach can also be used to design NRI-TL metamaterials with backward wave dispersion bandwidths of over 140%.
机译:提出了体积负折射率传输线(NRI-TL)超材料。这种结构构成了平面NRI-TL超材料的自然延伸,并保持了宽带宽和低传输损耗的理想特性。与它们的平面对应物不同,拟议的体积NRI-TL超材料可以有效地耦合来自自由空间的入射平面波。通过堆叠使用微波频率下的标准多层印刷电路板技术分别制造的层,可以轻松地构建所提出的拓扑。然而,体积结构的产生导致寄生平行板模式的存在。此模式可能会干扰超材料的所需反向波模式,从而导致出现阻带。为了促进对该新设计的快速分析,开发了多导体传输线模型。通过使用该模型和全波仿真,将证明可以通过适当地布置垂直感应负载线来消除这种有害的平行板模式。使用该过程,将显示出适当设计的感性负载可以产生实用的NRI超材料平板,该平板与大带宽(22%)上的自由空间相匹配,插入损耗低(<-1 dB)。该方法还可用于设计反向波色散带宽超过140%的NRI-TL超材料。

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