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Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring

Flexible wearable electrodes have been extensively used for obtaining electrophysiological signals towards smart health monitoring and disease diagnosis. Here, low-cost, and non-conductive silk fabric (SF) have been processed into highly conductive laser induced graphene (LIG) electrodes while maint...

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Detalles Bibliográficos
Autores principales: Abd-Elbaki, Mohamed K. M., Ragab, Tamer Mosaad, Ismael, Naglaa E. R., Khalil, Ahmed S. G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10613951/
https://www.ncbi.nlm.nih.gov/pubmed/37908662
http://dx.doi.org/10.1039/d3ra05730e
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author Abd-Elbaki, Mohamed K. M.
Ragab, Tamer Mosaad
Ismael, Naglaa E. R.
Khalil, Ahmed S. G.
author_facet Abd-Elbaki, Mohamed K. M.
Ragab, Tamer Mosaad
Ismael, Naglaa E. R.
Khalil, Ahmed S. G.
author_sort Abd-Elbaki, Mohamed K. M.
collection PubMed
description Flexible wearable electrodes have been extensively used for obtaining electrophysiological signals towards smart health monitoring and disease diagnosis. Here, low-cost, and non-conductive silk fabric (SF) have been processed into highly conductive laser induced graphene (LIG) electrodes while maintaining the original structure of SF. A CO(2)-pulsed laser was utilized to produce LIG-SF with controlled sheet resistance and mechanical properties. Laser processing of SFs under optimized conditions yielded LIG-SF electrodes with a high degree of homogeneity on both, top and bottom layers. Silk fibroin/Ca(2+) adhesive layers effectively promoted the adhesive, anti-bacterial properties and provided a conformal contact of LIG-SF electrodes with human skin. Compared with conventional Ag/AgCl electrodes, LIG-SF electrodes possesses a much lower contact impedance in contact with human skin enabling highly stable electrophysiological signals recording. The applicability of adhesive LIG-SF electrodes to acquire electrocardiogram (ECG) signals was investigated. ECG signals recordings of adhesive LIG-SF electrodes showed excellent performance compared to conventional Ag/AgCl electrodes at intense body movements while running at different speeds for up to 9 km over a duration of 24 h. Therefore, our proposed adhesive LIG-SF electrodes can be applied for long-term personalized healthcare monitoring and sports management applications.
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spelling pubmed-106139512023-10-31 Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring Abd-Elbaki, Mohamed K. M. Ragab, Tamer Mosaad Ismael, Naglaa E. R. Khalil, Ahmed S. G. RSC Adv Chemistry Flexible wearable electrodes have been extensively used for obtaining electrophysiological signals towards smart health monitoring and disease diagnosis. Here, low-cost, and non-conductive silk fabric (SF) have been processed into highly conductive laser induced graphene (LIG) electrodes while maintaining the original structure of SF. A CO(2)-pulsed laser was utilized to produce LIG-SF with controlled sheet resistance and mechanical properties. Laser processing of SFs under optimized conditions yielded LIG-SF electrodes with a high degree of homogeneity on both, top and bottom layers. Silk fibroin/Ca(2+) adhesive layers effectively promoted the adhesive, anti-bacterial properties and provided a conformal contact of LIG-SF electrodes with human skin. Compared with conventional Ag/AgCl electrodes, LIG-SF electrodes possesses a much lower contact impedance in contact with human skin enabling highly stable electrophysiological signals recording. The applicability of adhesive LIG-SF electrodes to acquire electrocardiogram (ECG) signals was investigated. ECG signals recordings of adhesive LIG-SF electrodes showed excellent performance compared to conventional Ag/AgCl electrodes at intense body movements while running at different speeds for up to 9 km over a duration of 24 h. Therefore, our proposed adhesive LIG-SF electrodes can be applied for long-term personalized healthcare monitoring and sports management applications. The Royal Society of Chemistry 2023-10-30 /pmc/articles/PMC10613951/ /pubmed/37908662 http://dx.doi.org/10.1039/d3ra05730e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Abd-Elbaki, Mohamed K. M.
Ragab, Tamer Mosaad
Ismael, Naglaa E. R.
Khalil, Ahmed S. G.
Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title_full Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title_fullStr Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title_full_unstemmed Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title_short Robust, self-adhesive and anti-bacterial silk-based LIG electrodes for electrophysiological monitoring
title_sort robust, self-adhesive and anti-bacterial silk-based lig electrodes for electrophysiological monitoring
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10613951/
https://www.ncbi.nlm.nih.gov/pubmed/37908662
http://dx.doi.org/10.1039/d3ra05730e
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