Electronics and Communications Engineering Department, Akhbar Elyom Academy, 6th of October City 12573, Egypt.
Microwave Engineering Department, Electronics Research Institute (ERI), Cairo 11843, Egypt.
Sensors (Basel). 2023 Jun 15;23(12):5608. doi: 10.3390/s23125608.
A wideband low-profile radiating G-shaped strip on a flexible substrate is proposed to operate as biomedical antenna for off-body communication. The antenna is designed to produce circular polarization over the frequency range 5-6 GHz to communicate with WiMAX/WLAN antennas. Furthermore, it is designed to produce linear polarization over the frequency range 6-19 GHz for communication with the on-body biosensor antennas. It is shown that an inverted G-shaped strip produces circular polarization (CP) of the opposite sense to that produced by G-shaped strip over the frequency range 5-6 GHz. The antenna design is explained and its performance is investigated through simulation, as well as experimental measurements. This antenna can be viewed as composed of a semicircular strip terminated with a horizontal extension at its lower end and terminated with a small circular patch through a corner-shaped strip extension at its upper end to form the shape of "G" or inverted "G". The purpose of the corner-shaped extension and the circular patch termination is to match the antenna impedance to 50 Ω over the entire frequency band (5-19 GHz) and to improve the circular polarization over the frequency band (5-6 GHz). To be fabricated on only one face of the flexible dielectric substrate, the antenna is fed through a co-planar waveguide (CPW). The antenna and the CPW dimensions are optimized to obtain the most optimal performance regarding the impedance matching bandwidth, 3dB Axial Ratio (AR) bandwidth, radiation efficiency, and maximum gain. The results show that the achieved 3dB-AR bandwidth is 18% (5-6 GHz). Thus, the proposed antenna covers the 5 GHz frequency band of the WiMAX/WLAN applications within its 3dB-AR frequency band. Furthermore, the impedance matching bandwidth is 117% (5-19 GHz) which enables low-power communication with the on-body sensors over this wide range of the frequency. The maximum gain and radiation efficiency are 5.37 dBi and 98%, respectively. The overall antenna dimensions are 25 × 27 × 0.13 mm3 and the bandwidth-dimension ratio (BDR) is 1733.
提出了一种工作在体外用非接触通信的生物医学天线的柔性基底上的宽带低剖面辐射 G 形条带。该天线设计在 5-6GHz 频率范围内产生圆极化,以与 WiMAX/WLAN 天线通信。此外,它设计在 6-19GHz 频率范围内产生线极化,以与体上生物传感器天线通信。结果表明,在 5-6GHz 频率范围内,倒置 G 形条带产生的圆极化(CP)与 G 形条带产生的圆极化相反。通过仿真和实验测量解释了天线的设计,并研究了其性能。这种天线可以看作是由一个半圆形条带组成,其下端有一个水平延伸,上端有一个通过角形条带延伸的小圆形贴片,形成“G”或倒置“G”的形状。角形延伸和圆形贴片的目的是在整个频带(5-19GHz)内将天线的阻抗匹配到 50Ω,并且在频带(5-6GHz)内提高圆极化。为了仅在柔性介电基底的一个面上制造,天线通过共面波导(CPW)馈电。优化了天线和 CPW 的尺寸,以获得最佳的阻抗匹配带宽、3dB 轴比(AR)带宽、辐射效率和最大增益。结果表明,所获得的 3dB-AR 带宽为 18%(5-6GHz)。因此,所提出的天线在其 3dB-AR 带宽内覆盖了 WiMAX/WLAN 应用的 5GHz 频段。此外,阻抗匹配带宽为 117%(5-19GHz),可在该宽频段内与体上传感器进行低功率通信。最大增益和辐射效率分别为 5.37dBi 和 98%。天线的整体尺寸为 25×27×0.13mm3,带宽-尺寸比(BDR)为 1733。