DocumentCode
3605406
Title
Design and In Vitro Interference Test of Microwave Noninvasive Blood Glucose Monitoring Sensor
Author
Heungjae Choi ; Naylon, Jack ; Luzio, Steve ; Beutler, Jan ; Birchall, James ; Martin, Chris ; Porch, Adrian
Author_Institution
Sch. of Eng., Cardiff Univ., Cardiff, UK
Volume
63
Issue
10
fYear
2015
Firstpage
3016
Lastpage
3025
Abstract
A design of a microwave noninvasive continuous blood glucose monitoring sensor and its interference test results are presented. The novelty of the proposed sensor is that it comprises two spatially separated split-ring resonators, where one interacts with the change in glucose level of a sample under test while the other ring is used as a reference. The reference ring has a slightly different resonant frequency and is desensitized to the sample owing to its location, thus allowing changes in temperature to be calibrated out. From an oral glucose tolerance test with two additional commercially available sensors (blood strip and continuous glucose monitor) in parallel, we obtained encouraging performance for our sensor comparable with those of the commercial sensors. The effects of endogenous interferents common to all subjects, i.e., common sugars, vitamins (ascorbic acid), and metabolites (uric acid) have also been investigated by using a large Franz cell assembly. From the interference test, it is shown that the change in sensor response is dominated by changes in glucose level for concentrations relevant to blood, and the effects of interferents are negligible in comparison.
Keywords
biochemistry; biomedical equipment; blood; calibration; resonators; Franz cell assembly; blood strip; calibration; endogenous interferent effects; glucose level; in vitro interference testing; metabolites; noninvasive continuous noninvasive blood glucose monitoring sensor; oral glucose tolerance testing; resonant frequency; spatially separated split-ring resonators; sugars; vitamins; Blood; Microwave measurement; Microwave theory and techniques; Monitoring; Sugar; Temperature measurement; Temperature sensors; Biomedical sensors; dielectric measurements; emerging application for RF/microwaves; material characterization; microwave sensors;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2015.2472019
Filename
7239650
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