Elsheakh Dalia N, Mohamed El-Hawary, Eldamak Angie R
Electrical Department, Faculty of Engineering and Technology, Badr University in Cairo, Badr 11829, Egypt.
Microstrip Department, Electronics Research Institute (ERI), El Nozha 11843, Egypt.
Biosensors (Basel). 2025 Apr 15;15(4):250. doi: 10.3390/bios15040250.
This paper introduces a novel-shaped, compact, multiband monopole antenna sensor incorporating an irregular curved split-ring resonator (SRR) design for non-invasive, continuous monitoring of human blood glucose levels (BGL). The sensor operates at multiple resonance frequencies: 0.94, 1.5, 3, 4.6, and 6.3 GHz, achieving coefficient reflection impedance bandwidths ≤ -10 dB of 4%, 1%, 3.5%, 65%, and 50%, respectively. Additionally, novel shapes of two SRR metamaterial cells create notches at 1.7 GHz and 4.4 GHz. The antenna is fabricated on an economical FR4 substrate with compact dimensions of 35 × 50 × 1.6 mm. The sensor's performance is evaluated using 3D electromagnetic software, incorporating a human finger phantom model and applying the Cole-Cole model to mimic the blood layer's sensitivity to blood glucose variations. The phantom model is positioned at different angles relative to the biosensor to detect frequency shifts corresponding to different glucose levels. Experimental validation involves placing a real human finger around the sensor to measure resonant frequency, magnitude, and phase changes. The fabricated sensor demonstrates a superior sensitivity of 24 MHz/mg/dL effectiveness compared to existing methods. This emphasizes its potential for practical, non-invasive glucose monitoring applications.
本文介绍了一种新型的、紧凑的多频段单极天线传感器,该传感器采用不规则弯曲的裂环谐振器(SRR)设计,用于非侵入式连续监测人体血糖水平(BGL)。该传感器在多个谐振频率下工作:0.94、1.5、3、4.6和6.3 GHz,其反射系数阻抗带宽≤ -10 dB分别为4%、1%、3.5%、65%和50%。此外,两种SRR超材料单元的新颖形状在1.7 GHz和4.4 GHz处产生陷波。该天线制作在经济实惠的FR4基板上,尺寸紧凑,为35×50×1.6 mm。使用3D电磁软件对传感器的性能进行评估,该软件包含人体手指模型,并应用Cole-Cole模型来模拟血液层对血糖变化的敏感度。将该模型相对于生物传感器以不同角度放置,以检测对应于不同葡萄糖水平的频率偏移。实验验证包括将真实人体手指放在传感器周围,以测量谐振频率、幅度和相位变化。与现有方法相比,所制作的传感器展现出24 MHz/(mg/dL)的卓越灵敏度。这突出了其在实际非侵入式血糖监测应用中的潜力。