Silicon elastomer as flexible substrate: dielectric characterization and applications for wearable antenna

IF 2.8 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Flexible and Printed Electronics Pub Date : 2023-10-09 DOI:10.1088/2058-8585/acfd3a
Adnan Iftikhar, Noaman Naseer, Solen Kumbay Yildiz, Dincer Gokcen, Adnan Fida, Muhammad Farhan Shafique, Birsen Saka
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Abstract

Abstract In this paper, low-cost mold silicone and silicone elastomers are investigated as substrates for the realization of flexible antennas. A methodical dielectric characterization is carried out, followed by a detailed explanation of the manufacturing process of the silicone elastomers. The prepared silicone elastomer substrates are also subjected to mechanical tests to ensure flexibility and robustness. The mechanical tests corroborated the utilization of the prepared silicone elastomers for the flexible antennas. Silicone has limited adhesion to metal, so when producing a silicone substrate, a 0.5 mm deep cavity is created with a negative impression of the intended metal component. Consequently, the metal layer is embedded within the silicon substrate, aligning the top surface of the metal flush with the silicone substrate edges. The radio frequency (RF) structure incorporates ridges within the silicone substrate to form a gap, effectively securing the metal on the surface of the silicone. Finally, to prevent the metal from falling from the silicone substrate, Kapton tape is laminated on the substrate. The wrapping of the Kapton tape additionally provides protection from moisture since the silicone elastomer substrate is prone to moisture absorption. The proposed technique is experimentally verified by designing and prototyping a coplanar patch antenna using copper and conductive woven fiber on the silicone substrate. The simulation analysis and experimentation results authenticated the effectiveness of the proposed technique to design a flexible antenna on the silicone elastomer substrates. It is also concluded that the conductive woven fiber-based prototype offers higher flexibility as compared to the copper-based prototype. It is also clinched that there exists a trade-off in flexibility and performance characteristics due to the conductivity and texture difference between the copper and conductive woven fiber.
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硅弹性体作为柔性衬底:介电特性及其在可穿戴天线中的应用
本文研究了低成本模具硅树脂和硅弹性体作为实现柔性天线的衬底。进行了系统的介电特性,然后详细说明了硅弹性体的制造过程。所制备的有机硅弹性体基材也进行了机械测试,以确保灵活性和坚固性。力学试验证实了所制备的有机硅弹性体在柔性天线中的应用。硅酮对金属的附着力有限,因此在生产硅酮基板时,会产生0.5毫米深的腔体,并对预期的金属组件产生负面印象。因此,金属层嵌入在所述硅衬底内,使所述金属衬底的顶表面与所述硅衬底边缘对齐。射频(RF)结构在硅基板内合并脊以形成间隙,有效地将金属固定在硅基板表面上。最后,为了防止金属从硅基板上掉下来,卡普顿胶带被层压在基板上。卡普顿胶带的包装还提供了防潮保护,因为硅弹性体基材容易吸收水分。通过在硅酮衬底上设计和制作铜和导电编织纤维共面贴片天线,验证了该技术的可行性。仿真分析和实验结果验证了该方法在硅弹性体基板柔性天线设计中的有效性。与铜基原型相比,基于导电编织纤维的原型具有更高的灵活性。由于铜和导电编织纤维之间的导电性和质地差异,在柔韧性和性能特征方面存在权衡。
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来源期刊
Flexible and Printed Electronics
Flexible and Printed Electronics MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.80
自引率
9.70%
发文量
101
期刊介绍: Flexible and Printed Electronics is a multidisciplinary journal publishing cutting edge research articles on electronics that can be either flexible, plastic, stretchable, conformable or printed. Research related to electronic materials, manufacturing techniques, components or systems which meets any one (or more) of the above criteria is suitable for publication in the journal. Subjects included in the journal range from flexible materials and printing techniques, design or modelling of electrical systems and components, advanced fabrication methods and bioelectronics, to the properties of devices and end user applications.
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