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Design of unit cells and demonstration of methods for synthesizing Huygens metasurfaces

机译:晶胞的设计和惠更斯超表面合成方法的论证

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摘要

The systematic design of unit cells for a Huygens metasurface, a particular class of metasurface, is presented here. The design of these unit cells uses transmission-line theory. This is validated through application to 1D refraction and Gaussian-to-Gaussian beam focusing. The 1D refraction is further validated experimentally. These applications demonstrate the practical utility of these Huygens metasurfaces. The Huygens metasurfaces presented here are printed on two bonded boards instead of many stacked, interspaced layers. This simplifies fabrication and enables the scaling down of the metasurfaces to shorter wavelengths. These two bonded boards implement a single, collocated layer of electric and magnetic dipoles. The electric and magnetic dipoles are synthesized using sub-wavelength arrays of printed elements. These printed elements can be manufactured using standard PCB fabrication techniques, and are capable of synthesizing the full range of impedances required. Furthermore, in contrast to frequency-selective surfaces (FSSs) and traditional transmitarrays, which are on the order of a wavelength thick, these designs are only λ/10 thick while incurring minimum reflections losses.
机译:此处介绍了惠更斯超表面(一种特殊类型的超表面)的晶胞的系统设计。这些单位单元的设计使用传输线理论。这可以通过应用于一维折射和高斯到高斯光束聚焦来验证。一维折射在实验上得到了进一步验证。这些应用证明了这些惠更斯形表面的实用性。此处介绍的惠更斯超表面印刷在两个粘合板上,而不是许多堆叠的,间隔开的层上。这简化了制造,并使超颖表面的尺寸缩小到较短的波长。这两个粘合板实现了电偶极子和磁偶极子的单个并置层。电偶极子和磁偶极子是使用打印元件的亚波长阵列合成的。可以使用标准PCB制造技术来制造这些印刷元件,并且能够合成所需的全部阻抗范围。此外,与频率选择表面(FSS)和传统的发射阵列(波长厚的数量级)相反,这些设计的厚度仅为λ/ 10厚,同时反射损失最小。

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