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A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface

Conductive hydrogels are widely used in sports monitoring, healthcare, energy storage, and other fields, due to their excellent physical and chemical properties. However, synthesizing a hydrogel with synergistically good mechanical and electrical properties is still challenging. Current fabrication...

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Detalles Bibliográficos
Autores principales: He, Chubin, Xu, Xiuru, Lin, Yang, Cui, Yang, Peng, Zhengchun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000308/
https://www.ncbi.nlm.nih.gov/pubmed/35407253
http://dx.doi.org/10.3390/nano12071137
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author He, Chubin
Xu, Xiuru
Lin, Yang
Cui, Yang
Peng, Zhengchun
author_facet He, Chubin
Xu, Xiuru
Lin, Yang
Cui, Yang
Peng, Zhengchun
author_sort He, Chubin
collection PubMed
description Conductive hydrogels are widely used in sports monitoring, healthcare, energy storage, and other fields, due to their excellent physical and chemical properties. However, synthesizing a hydrogel with synergistically good mechanical and electrical properties is still challenging. Current fabrication strategies are mainly focused on the polymerization of hydrogels with a single component, with less emphasis on combining and matching different conductive hydrogels. Inspired by the gradient modulus structures of the human skin, we propose a bilayer structure of conductive hydrogels, composed of a spray-coated poly(3,4-dihydrothieno-1,4-dioxin): poly(styrene sulfonate) (PEDOT:PSS) as the bonding interface, a relatively low modulus hydrogel on the top, and a relatively high modulus hydrogel on the bottom. The spray-coated PEDOT:PSS constructs an interlocking interface between the top and bottom hydrogels. Compared to the single layer counterparts, both the mechanical and electrical properties were significantly improved. The as-prepared hydrogel showed outstanding stretchability (1763.85 ± 161.66%), quite high toughness (9.27 ± 0.49 MJ/m(3)), good tensile strength (0.92 ± 0.08 MPa), and decent elastic modulus (69.16 ± 8.02 kPa). A stretchable strain sensor based on the proposed hydrogel shows good conductivity (1.76 S/m), high sensitivity (a maximum gauge factor of 18.14), and a wide response range (0–1869%). Benefitting from the modulus matching between the two layers of the hydrogels, the interfacial interlocking network, and the patch effect of the PEDOT:PSS, the strain sensor exhibits excellent interface robustness with stable performance (>12,500 cycles). These results indicate that the proposed bilayer conductive hydrogel is a promising material for stretchable electronics, soft robots, and next-generation wearables.
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spelling pubmed-90003082022-04-12 A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface He, Chubin Xu, Xiuru Lin, Yang Cui, Yang Peng, Zhengchun Nanomaterials (Basel) Article Conductive hydrogels are widely used in sports monitoring, healthcare, energy storage, and other fields, due to their excellent physical and chemical properties. However, synthesizing a hydrogel with synergistically good mechanical and electrical properties is still challenging. Current fabrication strategies are mainly focused on the polymerization of hydrogels with a single component, with less emphasis on combining and matching different conductive hydrogels. Inspired by the gradient modulus structures of the human skin, we propose a bilayer structure of conductive hydrogels, composed of a spray-coated poly(3,4-dihydrothieno-1,4-dioxin): poly(styrene sulfonate) (PEDOT:PSS) as the bonding interface, a relatively low modulus hydrogel on the top, and a relatively high modulus hydrogel on the bottom. The spray-coated PEDOT:PSS constructs an interlocking interface between the top and bottom hydrogels. Compared to the single layer counterparts, both the mechanical and electrical properties were significantly improved. The as-prepared hydrogel showed outstanding stretchability (1763.85 ± 161.66%), quite high toughness (9.27 ± 0.49 MJ/m(3)), good tensile strength (0.92 ± 0.08 MPa), and decent elastic modulus (69.16 ± 8.02 kPa). A stretchable strain sensor based on the proposed hydrogel shows good conductivity (1.76 S/m), high sensitivity (a maximum gauge factor of 18.14), and a wide response range (0–1869%). Benefitting from the modulus matching between the two layers of the hydrogels, the interfacial interlocking network, and the patch effect of the PEDOT:PSS, the strain sensor exhibits excellent interface robustness with stable performance (>12,500 cycles). These results indicate that the proposed bilayer conductive hydrogel is a promising material for stretchable electronics, soft robots, and next-generation wearables. MDPI 2022-03-29 /pmc/articles/PMC9000308/ /pubmed/35407253 http://dx.doi.org/10.3390/nano12071137 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
He, Chubin
Xu, Xiuru
Lin, Yang
Cui, Yang
Peng, Zhengchun
A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title_full A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title_fullStr A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title_full_unstemmed A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title_short A Bilayer Skin-Inspired Hydrogel with Strong Bonding Interface
title_sort bilayer skin-inspired hydrogel with strong bonding interface
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9000308/
https://www.ncbi.nlm.nih.gov/pubmed/35407253
http://dx.doi.org/10.3390/nano12071137
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