Design optimization for microstrip antennas based on polymethyl methacrylate (PMMA) substrate and carbon nanotube (CNT) conductive material in sub-6 Ghz band

IF 2.5 Q2 MULTIDISCIPLINARY SCIENCES Beni-Suef University Journal of Basic and Applied Sciences Pub Date : 2024-03-18 DOI:10.1186/s43088-024-00486-w
Djamila Ziani, Mohammed Belkheir, Mehdi Rouissat, Allel Mokaddem
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Abstract

Background

The rapid expansion of modern smart applications, demanding faster data transfer and extensive bandwidth, has prompted the development of new-generation networks like 5G and 6G. These networks encompass additional frequency bands such as sub-6 GHz, millimeter waves, and terahertz bands to meet the growing bandwidth requirements. However, despite the substantial bandwidth available in these bands, several challenges must be addressed to overcome unfavorable propagation characteristics. Moreover, numerous applications necessitate wireless devices with antennas that exhibit high flexibility and exceptional radiation responses, particularly when subjected to bending effects. This requirement highlights the importance of polymers-based antennas that can adapt to changing conditions while maintaining optimal performance. The present comprehensive study delves into the performance evaluation of rectangular and circular microstrip antennas utilizing PMMA (polymethyl methacrylate) polymer substrate with varying thicknesses.

Results

Notably, CNTs (Carbon Nanotubes) are employed as an alternative to traditional copper for the conductive part and ground plane. Both PMMA-based antennas, integrated with CNTs, exhibit a compact footprint of 27.8 × 47.8 × 1.5 mm3 for the circular antenna and 22.8 × 39.5 × 1.5 mm3 for the rectangular antenna. Impressively, the realized gain of both antennas surpasses 5 dBi, demonstrating robust performance in both flat and bending scenarios across different substrate thicknesses.

Conclusions

The rectangular antenna achieves a bandwidth of approximately 200 MHz, while the circular microstrip antenna showcase annotable bandwidth of 500 MHz. These exceptional outcomes position the two microstrip antennas as highly suitable for a diverse range of emerging applications within the sub-6 GHz band (the frequency range below 6 GHz in the radio spectrum). Thus, the combination of PMMA substrate, CNTs and the compact form factor of the antennas presents a compelling solution for meeting the demands of modern applications requiring efficient wireless communication with enhanced performance and bandwidth.

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基于聚甲基丙烯酸甲酯 (PMMA) 衬底和碳纳米管 (CNT) 导电材料的 6 Ghz 以下频段微带天线的优化设计
背景现代智能应用的迅速扩展要求更快的数据传输和更大的带宽,这促使了 5G 和 6G 等新一代网络的发展。这些网络包括额外的频段,如 6 GHz 以下、毫米波和太赫兹频段,以满足日益增长的带宽需求。然而,尽管这些频段的带宽很大,但要克服不利的传播特性,还必须应对一些挑战。此外,许多应用要求无线设备的天线具有高柔性和出色的辐射响应,尤其是在受到弯曲效应影响时。这一要求凸显了基于聚合物的天线的重要性,它既能适应不断变化的条件,又能保持最佳性能。本综合研究深入探讨了利用不同厚度的 PMMA(聚甲基丙烯酸甲酯)聚合物基材制作的矩形和圆形微带天线的性能评估。两种基于 PMMA 的天线都集成了碳纳米管,圆形天线的占地面积为 27.8 × 47.8 × 1.5 mm3,矩形天线的占地面积为 22.8 × 39.5 × 1.5 mm3。令人印象深刻的是,这两种天线的实际增益都超过了 5 dBi,在不同基板厚度的平面和弯曲情况下都表现出稳健的性能。这些优异的结果使这两种微带天线非常适合 6 GHz 以下频段(无线电频谱中 6 GHz 以下的频率范围)的各种新兴应用。因此,PMMA 基材、碳纳米管和天线的紧凑外形相结合,为满足现代应用对高效无线通信、更高的性能和带宽的需求,提供了令人信服的解决方案。
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CiteScore
2.60
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0.00%
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0
期刊介绍: Beni-Suef University Journal of Basic and Applied Sciences (BJBAS) is a peer-reviewed, open-access journal. This journal welcomes submissions of original research, literature reviews, and editorials in its respected fields of fundamental science, applied science (with a particular focus on the fields of applied nanotechnology and biotechnology), medical sciences, pharmaceutical sciences, and engineering. The multidisciplinary aspects of the journal encourage global collaboration between researchers in multiple fields and provide cross-disciplinary dissemination of findings.
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