C Balamurugan, T S Arun Samuel, S Merlin Gilbert Raj, S Pricilla Mary, A Sharon Geege
Deaprtment of ECE, National Engineering College, K.R Nagar, Kovilpatti, India.
Department of ECE, Karunya University, Coimbatore, India.
Sci Rep. 2025 Aug 8;15(1):29083. doi: 10.1038/s41598-025-13947-8.
A multiband microstrip patch antenna for WiMAX applications is designed, simulated, and fabricated. The proposed antenna achieves multiband operation by introducing slots and slits into the radiating patch element, enabling resonance at multiple desired frequencies. A flame-retardant epoxy material (FR4) with favorable dielectric properties is used as the substrate. This work introduces a low-profile, compact multiband patch antenna that is engineered to resonate precisely at the three standardized WiMAX frequencies (2.4, 3.6, and 5.57 GHz). Although slot- and slit-loaded antennas have been previously investigated, the novelty is in the meticulous geometrical tuning of these features to simultaneously achieve high gain and wide impedance matching at all three bands using a single-layer FR-4 substrate, without the need for metamaterials or multilayer fabrication. The structure that has been proposed offers a cost-effective and practicable solution for the deployment of real-time WiMAX. It achieves a maximal gain of 5.7 dBi, surpassing many of its existing counterparts in terms of efficiency and bandwidth compactness. The maximum realized gain of the antenna reaches 5.7 dBi at 5.57 GHz, demonstrating its effectiveness for high-frequency wireless communication. The fabricated prototype was tested, and the measured results show good agreement with the simulated data across the wide frequency range of 2 GHz to 6 GHz. Additionally, a performance comparison with previously reported multiband microstrip antennas highlights the advantages of the proposed design in terms of gain, bandwidth, and compact structure, making it a promising candidate for WiMAX and other modern wireless applications.
设计、模拟并制作了一种用于WiMAX应用的多频段微带贴片天线。所提出的天线通过在辐射贴片元件中引入缝隙来实现多频段工作,从而在多个期望频率上产生共振。使用具有良好介电性能的阻燃环氧树脂材料(FR4)作为基板。这项工作介绍了一种低剖面、紧凑的多频段贴片天线,该天线经过精心设计,能在三个标准化的WiMAX频率(2.4、3.6和5.57GHz)上精确共振。尽管之前已经对加载缝隙的天线进行了研究,但新颖之处在于对这些特征进行了精细的几何调整,以便使用单层FR-4基板在所有三个频段同时实现高增益和宽阻抗匹配,而无需超材料或多层制造。所提出的结构为实时WiMAX的部署提供了一种经济高效且切实可行的解决方案。它实现了5.7dBi的最大增益,在效率和带宽紧凑性方面超过了许多现有的同类产品。该天线在5.57GHz时的最大实现增益达到5.7dBi,证明了其在高频无线通信中的有效性。对制作的原型进行了测试,测量结果表明在2GHz至6GHz的宽频率范围内与模拟数据吻合良好。此外,与先前报道的多频段微带天线的性能比较突出了所提出设计在增益、带宽和紧凑结构方面的优势,使其成为WiMAX和其他现代无线应用的有前途的候选方案。