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基于开环微波谐振器的无芯片可打印传感器的无创连续时间血糖监测系统。

Non-invasive continuous-time glucose monitoring system using a chipless printable sensor based on split ring microwave resonators.

机构信息

Microwave to Millimeter Wave (M2M) Lab., Department of Electrical and Computer Engineering, University of Alberta, Edmonton, AB, Canada.

Alberta Diabetes Institute and the Department of Pharmacology, University of Alberta, Edmonton, AB, Canada.

出版信息

Sci Rep. 2020 Jul 31;10(1):12980. doi: 10.1038/s41598-020-69547-1.

Abstract

This paper reports a highly sensitive, non-invasive sensor for real-time glucose monitoring from interstitial fluid. The structure is comprised of a chip-less tag sensor which may be taped over the patient's skin and a reader, that can be embedded in a smartwatch. The tag sensor is energized through the established electromagnetic coupling between the tag and the reader and its frequency response is reflected on the spectrum of the reader in the same manner. The tag sensor consumes zero power as there is no requirement for any active readout or communication circuitry on the tag side. When measuring changes in glucose concentrations within saline replicating interstitial fluid, the sensor was able to detect glucose with an accuracy of ~ 1 mM/l over a physiological range of glucose concentrations with 38 kHz of the resonance frequency shift. This high sensitivity is attained as a result of the proposed new design and extended field concentration on the tag. The impact of some of the possible interferences on the response of the sensor's performance was also investigated. Variations in electrolyte concentrations within the test samples have a negligible effect on the response of the sensor unless these variations are supra-physiologically large.

摘要

本文报道了一种用于实时监测间质液中葡萄糖的高灵敏度、非侵入式传感器。该结构由一个无芯片标签传感器和一个读取器组成,标签传感器可以粘贴在患者的皮肤上,读取器可以嵌入智能手表中。标签传感器通过标签和读取器之间的电磁耦合进行供电,其频率响应以相同的方式反映在读取器的频谱上。标签传感器无需在标签侧使用任何主动读取或通信电路,因此不消耗任何功率。当在模拟间质液的生理盐水内测量葡萄糖浓度变化时,该传感器能够以约 1 mM/l 的准确度检测生理范围内的葡萄糖浓度,其共振频率偏移为 38 kHz。这种高灵敏度是由于提出的新设计和标签上扩展的场浓度实现的。还研究了一些可能的干扰对传感器性能响应的影响。除非这些变化超出生理范围,否则测试样品中电解质浓度的变化对传感器的响应几乎没有影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f57/7395170/2f381a942afe/41598_2020_69547_Fig1_HTML.jpg

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