A low-power approach to optical glucose sensing via polarisation switching
Publisher DOI
PubMed ID
40269078
Abstract
High-precision polarimetry is crucial for sensing and imaging applications, particularly for glucose monitoring within the physiological range of 50 to 400 mg/dl. Traditional approaches often rely on polarisation modulation using magneto-optic or liquid crystal modulators, which require high voltages or currents, limiting their practicality for wearable or implantable devices. In this work, we propose a polarisation-switching technique that alternates between two discrete polarisation states, offering a low-power alternative with miniaturisation potential. Using this method, we achieved a Mean Absolute Relative Difference of 7.7% and a Standard Error of Prediction of 9.6 mg/dl across the physiological glucose range, comparable to commercial continuous glucose monitors. Our approach demonstrates a limit of detection of approximately 40 mg/dl, with measurements performed in phosphate-buffered saline spiked with glucose. This work establishes polarisation switching as a viable alternative for glucose sensing, providing a foundation for future development of wearable and implantable glucose monitoring systems. By eliminating power-intensive components, our approach addresses key limitations of traditional polarimetric methods, paving the way for more accessible and energy-efficient diabetes management technologies.
Date Issued
2025-04-23
Publication Type
Article
Subjects
CGM
•
Glucose sensing
•
Optical biosensor
•
Polarimetry
•
Polarisation switching
Language(s)
en
Author(s)
Journal
Scientific Reports
Publisher
Nature Research
ISSN
2045-2322
Related Collection(s)
Access(Rights)
open.access