用于连续血糖监测的可植入SiC射频天线生物传感器

S. Afroz, S. Thomas, G. Mumcu, S. Saddow
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引用次数: 26

摘要

利用生物相容性材料碳化硅(SiC)开发了一种采用射频(RF)信号的连续葡萄糖传感器。不像生物传感器需要直接接触间质液体来触发化学反应来操作,这种生物相容性SiC传感器不需要直接接口。传感机制是基于共振频率的变化,作为葡萄糖水平变化的函数,这在电上表现为血液介电常数和电导率的变化。对于体内应用,天线传感器需要在体内环境中工作,并且已经确定这种生物相容性SiC生物传感器的最佳工作位置是在靠近血管的脂肪组织中。为了测试传感器作为葡萄糖水平的函数,使用合成体液(SBF)和猪血进行测量,其电等效于血浆。测量了不同葡萄糖水平下传感器性能的变化,并观察到随着葡萄糖水平的增加,谐振频率向较低值移动。体外传感器性能表明,传感器对葡萄糖浓度在120 mg/dl到530 mg/dl之间表现出剂量依赖性。模拟血液液体和猪血的位移分别为40 MHz和26 MHz,对应于每1 mg/dl血糖变化97 KHz和67 KHz的位移。
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Implantable SiC based RF antenna biosensor for continuous glucose monitoring
A continuous glucose sensor employing radio frequency (RF) signals has been developed using the biocompatible material Silicon Carbide (SiC). Unlike biosensors that require direct contact with interstitial fluids to trigger chemical reactions to operate, this biocompatible SiC sensor doesn't require a direct interface. The sensing mechanism is based upon a shift in resonant frequency as a function of change in glucose levels which electrically manifests itself as a change in blood permittivity and conductivity. For invivo applications the antenna sensor needs to operate inside the body environment, and it has been determined that the best operational location of this biocompatible SiC biosensor is within fatty tissue in close proximity to blood vessels. To test the sensor as a function of glucose level, measurements using synthetic body fluid (SBF), which is electrically equivalent to blood plasma, and pig blood were performed. Changes in sensor performance to varying glucose levels were measured and a shift in resonant frequency to lower values observed with increasing glucose level. In-vitro sensor performance demonstrated that the sensor showed a dose dependent response to glucose concentration from 120 mg/dl to 530 mg/dl. A shift of 40 MHz and 26 MHz for blood mimicking liquid and pig blood was observed corresponding to 97 KHz and 67 KHz shift per 1 mg/dl change in blood glucose.
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