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Improving microwave antenna gain and bandwidth with phase compensation metasurface
Author(s) -
Ke Chen,
Zhongjie Yang,
Yijun Feng,
Bo Zhu,
Junming Zhao,
Tian Jiang
Publication year - 2015
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4923195
Subject(s) - metamaterial , metamaterial antenna , patch antenna , microstrip antenna , radiation pattern , optics , bandwidth (computing) , capacitive sensing , physics , antenna measurement , acoustics , antenna (radio) , optoelectronics , slot antenna , computer science , electrical engineering , telecommunications , engineering
Metasurface, as a planar version of artificial metamaterial, provide an effective way to manipulate electromagnetic wave propagation. Here, we present a transparent metasurface for compensating the out-of-phase radiation from a microstrip patch antenna to improve its radiation gain and bandwidth. Based on the equivalence principle of Huygens’ surface, we propose metasurface composed of both inductive and capacitive resonant elements which could produce high transmission with variable phase characteristics. Such metasurface mounted on a patch antenna can transform the spherical-like phase profile generated from the patch into an in-phase planar one. A prototype antenna has been fabricated and validated the squeezed radiation pattern with suppressed sidelobes as well as enhanced impedance bandwidth due to strong near-field coupling. As operating at around 5.7 GHz, the proposed antenna may have potential application in wireless communication systems especially for point-to-point data transmission. It is believed that the design methodology could also be scaled to other frequency bands such as millimeter or terahertz wave

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