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Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics

A monolithic integration of high-performance soft electronic modules into various fabric materials has enabled a paradigm shift in wearable textile electronics. However, the current textile electronics have struggled against fatigue under repetitive deformation due to the absence of materials and st...

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Autores principales: Kim, Sun Hong, Kim, Yewon, Choi, Heewon, Park, Juhyung, Song, Jeong Han, Baac, Hyoung Won, Shin, Mikyung, Kwak, Jeonghun, Son, Donghee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034242/
https://www.ncbi.nlm.nih.gov/pubmed/35480785
http://dx.doi.org/10.1039/d1ra03392a
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author Kim, Sun Hong
Kim, Yewon
Choi, Heewon
Park, Juhyung
Song, Jeong Han
Baac, Hyoung Won
Shin, Mikyung
Kwak, Jeonghun
Son, Donghee
author_facet Kim, Sun Hong
Kim, Yewon
Choi, Heewon
Park, Juhyung
Song, Jeong Han
Baac, Hyoung Won
Shin, Mikyung
Kwak, Jeonghun
Son, Donghee
author_sort Kim, Sun Hong
collection PubMed
description A monolithic integration of high-performance soft electronic modules into various fabric materials has enabled a paradigm shift in wearable textile electronics. However, the current textile electronics have struggled against fatigue under repetitive deformation due to the absence of materials and structural design strategies for imparting electrical and mechanical robustness to individual fibers. Here, we report a mechanically and electrically durable, stretchable electronic textile (MED-ET) enabled by a precisely controlled diffusion of tough self-healing stretchable inks into fibers and an adoption of the kirigami-inspired design. Remarkably, the conductive percolative pathways in the fabric of MED-ET even under a harshly deformed environment were stably maintained due to an electrical recovery phenomenon which originates from the spontaneous rearrangement of Ag flakes in the self-healing polymer matrix. Specifically, such a unique property enabled damage-resistant performance when repetitive deformation and scratch were applied. In addition, the kirigami-inspired design was capable of efficiently dissipating the accumulated stress in the conductive fabric during stretching, thereby providing high stretchability (a tensile strain of 300%) without any mechanical fracture or electrical malfunction. Finally, we successfully demonstrate various electronic textile applications such as stretchable micro-light-emitting diodes (Micro-LED), electromyogram (EMG) monitoring and all-fabric thermoelectric devices (F-TEG).
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spelling pubmed-90342422022-04-26 Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics Kim, Sun Hong Kim, Yewon Choi, Heewon Park, Juhyung Song, Jeong Han Baac, Hyoung Won Shin, Mikyung Kwak, Jeonghun Son, Donghee RSC Adv Chemistry A monolithic integration of high-performance soft electronic modules into various fabric materials has enabled a paradigm shift in wearable textile electronics. However, the current textile electronics have struggled against fatigue under repetitive deformation due to the absence of materials and structural design strategies for imparting electrical and mechanical robustness to individual fibers. Here, we report a mechanically and electrically durable, stretchable electronic textile (MED-ET) enabled by a precisely controlled diffusion of tough self-healing stretchable inks into fibers and an adoption of the kirigami-inspired design. Remarkably, the conductive percolative pathways in the fabric of MED-ET even under a harshly deformed environment were stably maintained due to an electrical recovery phenomenon which originates from the spontaneous rearrangement of Ag flakes in the self-healing polymer matrix. Specifically, such a unique property enabled damage-resistant performance when repetitive deformation and scratch were applied. In addition, the kirigami-inspired design was capable of efficiently dissipating the accumulated stress in the conductive fabric during stretching, thereby providing high stretchability (a tensile strain of 300%) without any mechanical fracture or electrical malfunction. Finally, we successfully demonstrate various electronic textile applications such as stretchable micro-light-emitting diodes (Micro-LED), electromyogram (EMG) monitoring and all-fabric thermoelectric devices (F-TEG). The Royal Society of Chemistry 2021-06-24 /pmc/articles/PMC9034242/ /pubmed/35480785 http://dx.doi.org/10.1039/d1ra03392a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kim, Sun Hong
Kim, Yewon
Choi, Heewon
Park, Juhyung
Song, Jeong Han
Baac, Hyoung Won
Shin, Mikyung
Kwak, Jeonghun
Son, Donghee
Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title_full Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title_fullStr Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title_full_unstemmed Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title_short Mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
title_sort mechanically and electrically durable, stretchable electronic textiles for robust wearable electronics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9034242/
https://www.ncbi.nlm.nih.gov/pubmed/35480785
http://dx.doi.org/10.1039/d1ra03392a
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