Faculty of Engineering, Department of Electrical Engineering, Assiut University, Assiut, Egypt.
Department of Electrical and Computer Engineering, Concordia University, Montreal, QC, Canada.
Sci Rep. 2022 Dec 6;12(1):21111. doi: 10.1038/s41598-022-23861-y.
Graphene-based microwave devices have enabled reconfigurability, thus paving the way to the realization of flexible wireless terahertz systems with featured performances. Despite great progress in the development of graphene-based terahertz devices in the literature, high insertion loss and wide tunable range are still significant challenges at such high frequencies. In this work, we introduce the use of graphene to implement a reconfigurable printed ridge gap waveguide (RPRGW) structure over the terahertz frequency range for the first time. This guiding structure is suitable for both millimeter and terahertz wave applications due to its supporting quasi-TEM mode, which exhibits low dispersion compared to other traditional guiding structures. The presented solution is featured with low loss as the signal propagates in a lossless air gap, which is separated from the lossy graphene elements responsible for the reconfigurable behavior. In addition, this guiding structure is deployed to implement a tunable RPPGW power divider as an application example for the proposed structure.
基于石墨烯的微波器件实现了可重构性,从而为具有特色性能的柔性太赫兹无线系统的实现铺平了道路。尽管在文献中已经取得了基于石墨烯的太赫兹器件的巨大发展,但在如此高的频率下,高插入损耗和宽可调范围仍然是重大挑战。在这项工作中,我们首次提出在太赫兹频率范围内使用石墨烯来实现可重构的印刷脊间隙波导(RPRGW)结构。由于其支持准 TEM 模式,这种导波结构适用于毫米波和太赫兹波应用,与其他传统导波结构相比,它具有较低的色散。由于信号在无损耗的气隙中传播,损耗很低,而气隙与负责可重构行为的有损耗石墨烯元件分离,因此该解决方案具有低损耗的特点。此外,该导波结构被用于实现可调谐 RPPGW 功率分配器,作为所提出结构的应用示例。