Chekkar Walid, Lanteri Jerome, Malvaux Tom, Sourice Julien, Lizzi Leonardo, Migliaccio Claire, Ferrero Fabien
Laboratory of Electronics, Antennas and Telecommunications (LEAT), CNRS, Université Côte d'Azur, Sophia Antipolis, 06903 Valbonne, France.
Nanoe, 91160 Ballainvilliers, France.
Sensors (Basel). 2024 Oct 10;24(20):6512. doi: 10.3390/s24206512.
This paper presents a 3D-printed fully dielectric bi-material reflectarray with bandgap characteristics for multi-band applications. To achieve bandgap characteristics, a "1D Bragg reflector" unit cell is used. The latter is a layered structure characterized by a spatial distribution of refractive index that varies periodically along one dimension. By appropriately selecting the dimensions, the bandgap can be shifted to cover the desired frequency bands. To validate this bandgap characteristic, a (121.5 mm × 121.5 mm) with an f/D ratio of 0.5 reflectarray was fabricated. The measured gain at 27 GHz is 27.22 dBi, equivalent to an aperture efficiency of 35.05%, demonstrating good agreement between simulated and measured performances within the frequency range of 26-30 GHz. Additionally, the transparency of the reflectarray was verified by measuring the transmission coefficient, which exhibited a high level of transparency of 0.32 dB at 39 GHz. These features make the proposed reflectarray a good candidate for multi-band frequency applications.
本文提出了一种具有带隙特性的3D打印全介质双材料反射阵列,用于多频段应用。为了实现带隙特性,采用了“一维布拉格反射器”单元结构。后者是一种分层结构,其特征在于折射率的空间分布沿一个维度周期性变化。通过适当选择尺寸,可以将带隙移动到覆盖所需的频段。为了验证这种带隙特性,制作了一个f/D比为0.5的(121.5毫米×121.5毫米)反射阵列。在27吉赫兹处测得的增益为27.22 dBi,等效孔径效率为35.05%,表明在26 - 30吉赫兹频率范围内模拟和测量性能之间具有良好的一致性。此外,通过测量传输系数验证了反射阵列的透明度,在39吉赫兹处其透明度高达0.32分贝。这些特性使所提出的反射阵列成为多频段频率应用的良好候选者。