Compact metamaterial-based single/double-negative/near-zero index resonator for 5G sub-6 GHz wireless applications

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Abstract

The concept, performance, and analyses of distinctive, miniaturized metamaterial (MTM) unit cell addressing the forthcoming Sub 6 GHz 5G applications are presented in this paper. Two circular split-ring resonators (CSRR) with two parallel rectangular copper elements in front of the design and a slotted square element in the background make up the suggested metamaterial. It has a line segment with tunable features that is positioned in the center of the little ring copper structure. The suggested design offers a significant operating frequency band of 220 MHz together with a resonance of transmission coefficient S21 at 3.5 GHz. Furthermore, in two (z & x) principal axes of wave propagation, wide-range achievement, single/double-negative (S/DNG) refractive index, negative permittivity, and near-zero permeability properties were demonstrated. Through varying central slotted-strip line length, resonance frequencies can be selectively altered. Moreover, the metamaterial has overall dimensions of 9 × 9 mm2 and is composed on a Rogers 5880 RT substrate. In order to create the suggested MTM's equivalent circuit, which shows similar coefficient of transmission (S21), a proposed design’s numerical simulation is carried out in the CST micro-wave studio. This simulation is after that put to comparison with manufacturing of the design.

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Ibrahim, S. K., Al-Bawri, S. S., Singh, M. J., Ibrahim, H. H., Islam, M. T., Islam, M. S., … Sheta, A. F. A. (2024). Compact metamaterial-based single/double-negative/near-zero index resonator for 5G sub-6 GHz wireless applications. Scientific Reports, 14(1). https://doi.org/10.1038/s41598-024-63610-x

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