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Stretchable and Biocompatible Transparent Electrodes for Multimodal Biosignal Sensing from Exposed Skin

Title
Stretchable and Biocompatible Transparent Electrodes for Multimodal Biosignal Sensing from Exposed Skin
Authors
Kim M.Um H.-K.Choi H.Lee J.S.Kim J.Kim K.Noh E.Han M.Lee H.W.Choi W.I.Lee S.H.Lee J.-R.Lee B.H.
Ewha Authors
이향운이병훈이정록
SCOPUS Author ID
이향운scopus; 이병훈scopus; 이정록scopus
Issue Date
2023
Journal Title
Advanced Electronic Materials
ISSN
2199-160XJCR Link
Citation
Advanced Electronic Materials vol. 9, no. 7
Keywords
biosignal sensorsPEDOT:PSSprotic ionic liquidsreal-time health monitoringstretchable transparent electrodes
Publisher
John Wiley and Sons Inc
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
Real-time health monitoring technology in daily life requires mechanically robust and transparent electrodes for multimodal biosignal sensing from exposed human epidermis. Here, highly stretchable transparent electrodes comprising a water-dispersed conductive polymer, poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS), and a protic ionic liquid (IL), 3-methylimidazolium:bis(trifluoromethylsulfonyl)amide (p-MIM:TFSI) are reported. Owing to the high water miscibility of p-MIM:TFSI and its favorable ion exchange capability with PEDOT:PSS, PEDOT:PSS/p-MIM:TFSI transparent electrodes show enhanced electrical conductivity (σ = 450 S cm−1) and thin-film stretchability represented by crack onset strain (εc) exceeding 50%. These electrodes outperform other PEDOT:PSS electrodes processed with an aprotic counterpart, 1-ethyl-3-methylimidazolium(EMIM):TFSI, or a traditional ionic salt, Li:TFSI. The PEDOT:PSS/p-MIM:TFSI thin-film electrodes are also biocompatible and conformally adhere to human skin; therefore, multimodal biosignals including electrocardiogram, electrooculogram, and electromyogram with high signal-to-noise ratios from exposed epidermis on human faces and arms under various measurement conditions mimicking daily activities are collected. Considering the importance of light penetration through human skin for stable biological activity during biosignal monitoring, the results can broaden the applicability of daily-use wearable biosignal sensors by applying them to exposed human skin. © 2023 The Authors. Advanced Electronic Materials published by Wiley-VCH GmbH.
DOI
10.1002/aelm.202300075
Appears in Collections:
의과대학 > 의학과 > Journal papers
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