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Outdoor Worker Stress Monitoring Electronics with Nanofabric Radiative Cooler-Based Thermal Management

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Abstract
Severe stress endangers outdoor workers who are in an exceedingly hot workplace. Although recent studies quantify stress levels on the human skin, they still rely on rigid, bulky sensor modules, causing data loss from motion artifacts and limited field-deployability for continuous health monitoring. Moreover, no prior work shows a wearable device that can endure heat exposure while showing continuous monitoring of a subject's stress under realistic working environments. Herein, a soft, field-deployable, wearable bioelectronic system is introduced for detecting outdoor workers' stress levels with negligible motion artifacts and controllable thermal management. A nanofabric radiative cooler (NFRC) and miniaturized sensors with a nanomembrane soft electronic platform are integrated to measure stable electrodermal activities and temperature in hot outdoor conditions. The NFRC exhibits outstanding cooling performance in sub-ambient air with high solar reflectivity and high thermal emissivity. The integrated wearable device with all embedded electronic components and the NFRC shows a lower temperature (41.1%) in sub-ambient air than the NFRC-less device while capturing improved operation time (18.2%). In vivo human study of the bioelectronics with agricultural activities demonstrates the device's capability for portable, continuous, real-time health monitoring of outdoor workers with field deployability.
Author(s)
Kim, HojoongYoo, Young JinYun, Joo HoHeo, Se-YeonSong, Young MinYeo, Woon-Hong
Issued Date
2023-11
Type
Article
DOI
10.1002/adhm.202301104
URI
https://scholar.gist.ac.kr/handle/local/9929
Publisher
WILEY
Citation
ADVANCED HEALTHCARE MATERIALS, v.12, no.28, pp.2301104
ISSN
2192-2640
Appears in Collections:
Department of Electrical Engineering and Computer Science > 1. Journal Articles
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