一种用于毫米波波段的新型超宽带纺织基超材料吸收体的研制

Gökberk Akarsu, Mehmet Faruk Cengiz, D. Fawzy, E. Zengin, A. Allam, Hany Taher, Frances Cleary, Mohammed Farouk Nakmouche
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引用次数: 1

摘要

这项工作提出了一种用于智能电子纺织品应用的超宽带超材料(MM)吸收器。该设计基于一种新颖的细胞几何形状,由两个组合的字母块(A&S)组成,印在接地的纺织品基材上。这种单元几何结构是专门为毫米波(mm-wave)应用开发和优化的。在本研究中,考虑了不同类型的纺织品,即Felt, Denim和Polyester,获得的-10 dB反射分数带宽分别约为50.36%,44.49%和41.42%。比较传统的基于pcb的电介质(FR-4和Rogers RT-5880)和基于纺织的织物(毛毡,牛仔布和聚酯)表明,纺织织物显示的带宽明显更宽。该研究还表明,随着材料表面曲率的增加,纺织基材料的弯曲对-10 dB带宽有相反的影响。与文献中报道的其他吸收剂和结构相比,目前的设计更紧凑,更薄,在吸收性方面更有效。所获得的结果对于基于超宽带电子纺织品的应用,如能量收集、健康监测和伪装系统的开发是有希望的。
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Development of A Novel Ultra-Wideband Textile-Based Metamaterial Absorber for mm-wave Band Applications
This work proposes an ultra-wideband Metamaterial (MM) absorber for smart electronic textile (e-textile) applications. The design is based on a novel cell geometry composed of two combined letter patches (A&S) printed on a grounded textile substrate. This unit cell geometry is specifically developed and optimized for millimeter-wave (mm-wave) applications. In this study, different types of textiles are considered, namely, Felt, Denim, and Polyester, and the achieved -10 dB reflective fractional bandwidths are about 50.36%, 44.49%, and 41.42%, respectively. A comparison between conventional counterparts PCB-based dielectrics (FR-4 and Rogers RT-5880) and textile-based fabrics (Felt, Denim, and Polyester) indicates that the bandwidths exhibited by textile fabrics are significantly wider. This study also demonstrates that the bending of textile-based materials has an inverse effect on the -10 dB bandwidth, as the material's surface curvature increases. The current design is more compact, thin, and more efficient in terms of absorptivity in comparison to other reported absorbers and structures in the literature. The obtained results can be considered promising for the development of ultra-wideband e-textile-based applications such as energy harvesting, health monitoring, and camouflage systems.
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