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基于 ELC 谐振器的可重复使用射频微流控传感器设计,用于血糖估计。

Design of an ELC resonator-based reusable RF microfluidic sensor for blood glucose estimation.

机构信息

Department of Electrical Engineering, Indian Institute of Technology Kanpur, Kanpur, Uttar Pradesh, 208016, India.

出版信息

Sci Rep. 2020 Nov 2;10(1):18842. doi: 10.1038/s41598-020-75716-z.

Abstract

Design of a reusable microfluidic sensor for blood glucose estimation at microwave frequencies is presented. The sensing unit primarily comprises a complementary electric LC (CELC) resonator, which is made reusable by filling the test sample in a glass capillary before mounting it inside a groove cut in the central arm of the resonator. The use of glass capillary in the present situation to contain the blood sample actually eliminates the possibility of any direct contact of the sensor with the test sample, and hence wards off any coincidental contamination of the sensor. Usage of the capillary provides additional benefits as only microliters of the sample are required, besides offering sterile measuring environment since these capillaries are disposable. The capillary made of borosilicate glass is highly biocompatible and exhibits exceptionally high chemical resistance in corrosive environments. Apart from reusability, the novelty of the proposed sensor also lies in its enhanced sensitivity which is quite an essential factor when it comes to the measurement of glucose concentration in the human physiological range. The applicability of the proposed scheme for glucose sensing is demonstrated by performing RF measurements of aqueous glucose solutions and goat blood samples using the fabricated sensor.

摘要

设计了一种可重复使用的微流控传感器,用于在微波频率下估计血糖。传感单元主要由互补电 LC(CELC)谐振器组成,通过在将其安装在谐振器中心臂上切割的凹槽内之前,将测试样品填充到玻璃毛细管中,使该传感器可重复使用。在当前情况下,使用玻璃毛细管来容纳血液样本实际上消除了传感器与测试样本直接接触的任何可能性,从而避免了传感器的任何偶然污染。使用毛细管具有额外的好处,因为只需要微升的样品,而且由于这些毛细管是一次性的,因此提供了无菌的测量环境。由硼硅酸盐玻璃制成的毛细管具有高度的生物相容性,并且在腐蚀性环境中表现出极高的化学抗性。除了可重复使用之外,所提出的传感器的新颖性还在于其增强的灵敏度,这在测量人类生理范围内的葡萄糖浓度时是一个非常重要的因素。通过使用所制造的传感器对水溶液和山羊血液样本进行射频测量,证明了所提出方案在葡萄糖传感中的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8685/7606440/d9939c32b3a8/41598_2020_75716_Fig1_HTML.jpg

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