Department of Electronics Engineering, Kwangwoon University, Seoul, Republic of Korea.
Department of Electronics Engineering, Kwangwoon University, Seoul, Republic of Korea.
Biosens Bioelectron. 2015 May 15;67:687-93. doi: 10.1016/j.bios.2014.10.021. Epub 2014 Oct 19.
A reusable robust radio frequency (RF) biosensor with a rectangular meandered line (RML) resonator on a gallium arsenide substrate by integrated passive device (IPD) technology was designed, fabricated and tested to enable the real-time identification of the glucose level in human serum. The air-bridge structure fabricated by an IPD technology was applied to the RML resonator to improve its sensitivity by increasing the magnitude of the return loss (S21). The resonance behaviour, based on S21 characteristics of the biosensor, was analysed at 9.20 GHz with human serum containing different glucose concentration ranging from 148-268 mg dl(-1), 105-225 mg dl(-1) and at a deionised (D) water glucose concentration in the range of 25- 500 mg dl(-1) for seven different samples. A calibration analysis was performed for the human serum from two different subjects and for D-glucose at a response time of 60 s; the reproducibility, the minimum shift in resonance frequency and the long-term stability of the signal were investigated. The feature characteristics based on the resonance concept after the use of serum as an analyte are modelled as an inductor, capacitor and resistor. The findings support the development of resonance-based sensing with an excellent sensitivity of 1.08 MHz per 1 mg dl(-1), a detection limit of 8.01 mg dl(-1), and a limit of quantisation of 24.30 mg dl(-1).
基于砷化镓衬底上集成无源器件 (IPD) 技术的矩形蜿蜒线 (RML) 谐振器,设计、制造和测试了一种可重复使用的稳健射频 (RF) 生物传感器,以实现对人血清中葡萄糖水平的实时识别。采用 IPD 技术制造的空气桥结构应用于 RML 谐振器,通过增加回波损耗 (S21) 的幅度来提高其灵敏度。基于生物传感器的 S21 特性,在 9.20GHz 下分析了谐振行为,研究了含有不同葡萄糖浓度(范围为 148-268mg dl(-1)、105-225mg dl(-1))的人血清和去离子(D)水葡萄糖浓度(范围为 25-500mg dl(-1))的 7 个不同样本的生物传感器的谐振行为。对来自两个不同个体的人血清和 D-葡萄糖进行了校准分析,响应时间为 60s;研究了重复性、共振频率的最小偏移和信号的长期稳定性。基于使用血清作为分析物后的谐振概念的特征特性被建模为电感器、电容器和电阻器。研究结果支持基于谐振的传感的发展,具有 1.08MHz/1mg dl(-1)的优异灵敏度、8.01mg dl(-1)的检测限和 24.30mg dl(-1)的定量限。