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Abstract
Wearable temperature sensors with high accuracy are critical for human health monitoring. Ideally, they should show accuracy matching that of medical-grade thermometers (i.e., ± ≈0.1–0.2 °C). Achieving this goal has proven challenging for sensors that must also meet key wearable requirements, such as flexibility, stretchability, and breathability. Herein, a new stretchable supercapacitive temperature sensor with a resolution of ±0.2 °C, is presented, which was achieved by. Two new strategies to increase temperature sensitivity and minimize the interferences of mechanical stretching and pressure: a) synthesizing an ion-conductive NaCl-organogel to serve as the redox-active separator to increase sensitivity and suppress interference of compression; and b) using a kirigami design to decrease the interference of stretch and improve breathability. These two novel strategies endow the supercapacitive temperature sensors with a temperature accuracy of ±0.2 °C and exceptionally high sensitivity of 0.095 °C−1, which is more than 13 times higher than traditional dielectric-capacitive sensors. The potential of the supercapacitive sensor in measuring body temperature is demonstrated by continuously monitoring skin temperatures under a medical compression garment that exerts pressure on the skin and the unsteady wrist flexion. The findings confirm that the organogel-based supercapacitive sensors offer an extraordinary temperature accuracy significantly better than wearable sensors reported in the literature. The combined characteristics of high resolution, linearity, breathability, and stretchability make this sensor a promising candidate for skin-interfaced health monitoring devices.
Original language | English |
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Article number | 2201020 |
Pages (from-to) | 1-12 |
Number of pages | 12 |
Journal | Advanced Materials Technologies |
Volume | 8 |
Issue number | 4 |
Early online date | 20 Nov 2022 |
DOIs | |
Publication status | Published - 24 Feb 2023 |
Bibliographical note
Copyright the Author(s) 2022. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.Keywords
- capacitive
- precise
- pressure-insensitive
- strain-insensitive
- temperature sensor
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- 1 Finished
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Novel multiscale fibre composites for cryogenic space technologies
Wang, C. H., Wu, S., Kinloch, A. J. & Rose, F.
26/04/19 → 25/04/22
Project: Research