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Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics

Developing bioelectronics that retains their long‐term functionalities in the human body during daily activities is a current critical issue. To accomplish this, robust tissue adaptability and biointerfacing of bioelectronics should be achieved. Hydrogels have emerged as promising materials for bioe...

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Autores principales: Park, Jae, Kim, Ju Yeon, Heo, Jeong Hyun, Kim, Yeonju, Kim, Soo A, Park, Kijun, Lee, Yeontaek, Jin, Yoonhee, Shin, Su Ryon, Kim, Dae Woo, Seo, Jungmok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10131858/
https://www.ncbi.nlm.nih.gov/pubmed/36799540
http://dx.doi.org/10.1002/advs.202207237
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author Park, Jae
Kim, Ju Yeon
Heo, Jeong Hyun
Kim, Yeonju
Kim, Soo A
Park, Kijun
Lee, Yeontaek
Jin, Yoonhee
Shin, Su Ryon
Kim, Dae Woo
Seo, Jungmok
author_facet Park, Jae
Kim, Ju Yeon
Heo, Jeong Hyun
Kim, Yeonju
Kim, Soo A
Park, Kijun
Lee, Yeontaek
Jin, Yoonhee
Shin, Su Ryon
Kim, Dae Woo
Seo, Jungmok
author_sort Park, Jae
collection PubMed
description Developing bioelectronics that retains their long‐term functionalities in the human body during daily activities is a current critical issue. To accomplish this, robust tissue adaptability and biointerfacing of bioelectronics should be achieved. Hydrogels have emerged as promising materials for bioelectronics that can softly adapt to and interface with tissues. However, hydrogels lack toughness, requisite electrical properties, and fabrication methodologies. Additionally, the water‐swellable property of hydrogels weakens their mechanical properties. In this work, an intrinsically nonswellable multifunctional hydrogel exhibiting tissue‐like moduli ranging from 10 to 100 kPa, toughness (400–873 J m(−3)), stretchability (≈1000% strain), and rapid self‐healing ability (within 5 min), is developed. The incorporation of carboxyl‐ and hydroxyl‐functionalized carbon nanotubes (fCNTs) ensures high conductivity of the hydrogel (≈40 S m(−1)), which can be maintained and recovered even after stretching or rupture. After a simple chemical modification, the hydrogel shows tissue‐adhesive properties (≈50 kPa) against the target tissues. Moreover, the hydrogel can be 3D printed with a high resolution (≈100 µm) through heat treatment owing to its shear‐thinning capacity, endowing it with fabrication versatility. The hydrogel is successfully applied to underwater electromyography (EMG) detection and ex vivo bladder expansion monitoring, demonstrating its potential for practical bioelectronics.
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spelling pubmed-101318582023-04-27 Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics Park, Jae Kim, Ju Yeon Heo, Jeong Hyun Kim, Yeonju Kim, Soo A Park, Kijun Lee, Yeontaek Jin, Yoonhee Shin, Su Ryon Kim, Dae Woo Seo, Jungmok Adv Sci (Weinh) Research Articles Developing bioelectronics that retains their long‐term functionalities in the human body during daily activities is a current critical issue. To accomplish this, robust tissue adaptability and biointerfacing of bioelectronics should be achieved. Hydrogels have emerged as promising materials for bioelectronics that can softly adapt to and interface with tissues. However, hydrogels lack toughness, requisite electrical properties, and fabrication methodologies. Additionally, the water‐swellable property of hydrogels weakens their mechanical properties. In this work, an intrinsically nonswellable multifunctional hydrogel exhibiting tissue‐like moduli ranging from 10 to 100 kPa, toughness (400–873 J m(−3)), stretchability (≈1000% strain), and rapid self‐healing ability (within 5 min), is developed. The incorporation of carboxyl‐ and hydroxyl‐functionalized carbon nanotubes (fCNTs) ensures high conductivity of the hydrogel (≈40 S m(−1)), which can be maintained and recovered even after stretching or rupture. After a simple chemical modification, the hydrogel shows tissue‐adhesive properties (≈50 kPa) against the target tissues. Moreover, the hydrogel can be 3D printed with a high resolution (≈100 µm) through heat treatment owing to its shear‐thinning capacity, endowing it with fabrication versatility. The hydrogel is successfully applied to underwater electromyography (EMG) detection and ex vivo bladder expansion monitoring, demonstrating its potential for practical bioelectronics. John Wiley and Sons Inc. 2023-02-17 /pmc/articles/PMC10131858/ /pubmed/36799540 http://dx.doi.org/10.1002/advs.202207237 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Park, Jae
Kim, Ju Yeon
Heo, Jeong Hyun
Kim, Yeonju
Kim, Soo A
Park, Kijun
Lee, Yeontaek
Jin, Yoonhee
Shin, Su Ryon
Kim, Dae Woo
Seo, Jungmok
Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title_full Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title_fullStr Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title_full_unstemmed Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title_short Intrinsically Nonswellable Multifunctional Hydrogel with Dynamic Nanoconfinement Networks for Robust Tissue‐Adaptable Bioelectronics
title_sort intrinsically nonswellable multifunctional hydrogel with dynamic nanoconfinement networks for robust tissue‐adaptable bioelectronics
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10131858/
https://www.ncbi.nlm.nih.gov/pubmed/36799540
http://dx.doi.org/10.1002/advs.202207237
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