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Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration

[Image: see text] The fabrication of electrically conductive hydrogels is challenging as the introduction of an electrically conductive filler often changes mechanical hydrogel matrix properties. Here, we present an approach for the preparation of hydrogel composites with outstanding electrical cond...

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Autores principales: Arndt, Christine, Hauck, Margarethe, Wacker, Irene, Zeller-Plumhoff, Berit, Rasch, Florian, Taale, Mohammadreza, Nia, Ali Shaygan, Feng, Xinliang, Adelung, Rainer, Schröder, Rasmus R., Schütt, Fabian, Selhuber-Unkel, Christine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8155331/
https://www.ncbi.nlm.nih.gov/pubmed/33724848
http://dx.doi.org/10.1021/acs.nanolett.0c04375
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author Arndt, Christine
Hauck, Margarethe
Wacker, Irene
Zeller-Plumhoff, Berit
Rasch, Florian
Taale, Mohammadreza
Nia, Ali Shaygan
Feng, Xinliang
Adelung, Rainer
Schröder, Rasmus R.
Schütt, Fabian
Selhuber-Unkel, Christine
author_facet Arndt, Christine
Hauck, Margarethe
Wacker, Irene
Zeller-Plumhoff, Berit
Rasch, Florian
Taale, Mohammadreza
Nia, Ali Shaygan
Feng, Xinliang
Adelung, Rainer
Schröder, Rasmus R.
Schütt, Fabian
Selhuber-Unkel, Christine
author_sort Arndt, Christine
collection PubMed
description [Image: see text] The fabrication of electrically conductive hydrogels is challenging as the introduction of an electrically conductive filler often changes mechanical hydrogel matrix properties. Here, we present an approach for the preparation of hydrogel composites with outstanding electrical conductivity at extremely low filler loadings (0.34 S m(–1), 0.16 vol %). Exfoliated graphene and polyacrylamide are microengineered to 3D composites such that conductive graphene pathways pervade the hydrogel matrix similar to an artificial nervous system. This makes it possible to combine both the exceptional conductivity of exfoliated graphene and the adaptable mechanical properties of polyacrylamide. The demonstrated approach is highly versatile regarding porosity, filler material, as well as hydrogel system. The important difference to other approaches is that we keep the original properties of the matrix, while ensuring conductivity through graphene-coated microchannels. This novel approach of generating conductive hydrogels is very promising, with particular applications in the fields of bioelectronics and biohybrid robotics.
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spelling pubmed-81553312021-05-28 Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration Arndt, Christine Hauck, Margarethe Wacker, Irene Zeller-Plumhoff, Berit Rasch, Florian Taale, Mohammadreza Nia, Ali Shaygan Feng, Xinliang Adelung, Rainer Schröder, Rasmus R. Schütt, Fabian Selhuber-Unkel, Christine Nano Lett [Image: see text] The fabrication of electrically conductive hydrogels is challenging as the introduction of an electrically conductive filler often changes mechanical hydrogel matrix properties. Here, we present an approach for the preparation of hydrogel composites with outstanding electrical conductivity at extremely low filler loadings (0.34 S m(–1), 0.16 vol %). Exfoliated graphene and polyacrylamide are microengineered to 3D composites such that conductive graphene pathways pervade the hydrogel matrix similar to an artificial nervous system. This makes it possible to combine both the exceptional conductivity of exfoliated graphene and the adaptable mechanical properties of polyacrylamide. The demonstrated approach is highly versatile regarding porosity, filler material, as well as hydrogel system. The important difference to other approaches is that we keep the original properties of the matrix, while ensuring conductivity through graphene-coated microchannels. This novel approach of generating conductive hydrogels is very promising, with particular applications in the fields of bioelectronics and biohybrid robotics. American Chemical Society 2021-03-16 2021-04-28 /pmc/articles/PMC8155331/ /pubmed/33724848 http://dx.doi.org/10.1021/acs.nanolett.0c04375 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Arndt, Christine
Hauck, Margarethe
Wacker, Irene
Zeller-Plumhoff, Berit
Rasch, Florian
Taale, Mohammadreza
Nia, Ali Shaygan
Feng, Xinliang
Adelung, Rainer
Schröder, Rasmus R.
Schütt, Fabian
Selhuber-Unkel, Christine
Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title_full Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title_fullStr Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title_full_unstemmed Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title_short Microengineered Hollow Graphene Tube Systems Generate Conductive Hydrogels with Extremely Low Filler Concentration
title_sort microengineered hollow graphene tube systems generate conductive hydrogels with extremely low filler concentration
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8155331/
https://www.ncbi.nlm.nih.gov/pubmed/33724848
http://dx.doi.org/10.1021/acs.nanolett.0c04375
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