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Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs

In this paper, we report a cost-effective and scalable approach to produce highly homogeneous graphene and CNT-based silicone composites with potential applications in diverse fields of research, including biosensors and wearable electronics. This approach includes the fabrication of hybrid fillers...

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Autores principales: Barshutina, Marie N., Volkov, Valentyn S., Arsenin, Aleksey V., Yakubovsky, Dmitriy I., Melezhik, Alexander V., Blokhin, Alexander N., Tkachev, Alexey G., Lopachev, Alexander V., Kondrashov, Vladislav A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8145146/
https://www.ncbi.nlm.nih.gov/pubmed/33924905
http://dx.doi.org/10.3390/nano11051143
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author Barshutina, Marie N.
Volkov, Valentyn S.
Arsenin, Aleksey V.
Yakubovsky, Dmitriy I.
Melezhik, Alexander V.
Blokhin, Alexander N.
Tkachev, Alexey G.
Lopachev, Alexander V.
Kondrashov, Vladislav A.
author_facet Barshutina, Marie N.
Volkov, Valentyn S.
Arsenin, Aleksey V.
Yakubovsky, Dmitriy I.
Melezhik, Alexander V.
Blokhin, Alexander N.
Tkachev, Alexey G.
Lopachev, Alexander V.
Kondrashov, Vladislav A.
author_sort Barshutina, Marie N.
collection PubMed
description In this paper, we report a cost-effective and scalable approach to produce highly homogeneous graphene and CNT-based silicone composites with potential applications in diverse fields of research, including biosensors and wearable electronics. This approach includes the fabrication of hybrid fillers based on few-layer graphene and CNTs by water solution blending and manufacturing of graphene/CNT/PDMS composites through calendering in a three-roll mill. The influence of processing parameters, the graphene/CNT ratio, and hybrid filler loading was thoroughly investigated, and the optimal parameters for producing hybrid composites with superior electrical and mechanical properties were found. It was also confirmed that the graphene/CNT hybrid system exhibits a synergistic effect of non-covalent interactions between graphene sheets and CNT sidewalls. This synergistic effect prevents the aggregation of graphene sheets, facilitates the dispersion of graphene and CNTs in the silicone matrix, and contributes to the superior properties of hybrid composites compared to composites with either of these fillers alone.
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spelling pubmed-81451462021-05-26 Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs Barshutina, Marie N. Volkov, Valentyn S. Arsenin, Aleksey V. Yakubovsky, Dmitriy I. Melezhik, Alexander V. Blokhin, Alexander N. Tkachev, Alexey G. Lopachev, Alexander V. Kondrashov, Vladislav A. Nanomaterials (Basel) Article In this paper, we report a cost-effective and scalable approach to produce highly homogeneous graphene and CNT-based silicone composites with potential applications in diverse fields of research, including biosensors and wearable electronics. This approach includes the fabrication of hybrid fillers based on few-layer graphene and CNTs by water solution blending and manufacturing of graphene/CNT/PDMS composites through calendering in a three-roll mill. The influence of processing parameters, the graphene/CNT ratio, and hybrid filler loading was thoroughly investigated, and the optimal parameters for producing hybrid composites with superior electrical and mechanical properties were found. It was also confirmed that the graphene/CNT hybrid system exhibits a synergistic effect of non-covalent interactions between graphene sheets and CNT sidewalls. This synergistic effect prevents the aggregation of graphene sheets, facilitates the dispersion of graphene and CNTs in the silicone matrix, and contributes to the superior properties of hybrid composites compared to composites with either of these fillers alone. MDPI 2021-04-28 /pmc/articles/PMC8145146/ /pubmed/33924905 http://dx.doi.org/10.3390/nano11051143 Text en © 2021 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
Barshutina, Marie N.
Volkov, Valentyn S.
Arsenin, Aleksey V.
Yakubovsky, Dmitriy I.
Melezhik, Alexander V.
Blokhin, Alexander N.
Tkachev, Alexey G.
Lopachev, Alexander V.
Kondrashov, Vladislav A.
Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title_full Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title_fullStr Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title_full_unstemmed Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title_short Biocompatible, Electroconductive, and Highly Stretchable Hybrid Silicone Composites Based on Few-Layer Graphene and CNTs
title_sort biocompatible, electroconductive, and highly stretchable hybrid silicone composites based on few-layer graphene and cnts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8145146/
https://www.ncbi.nlm.nih.gov/pubmed/33924905
http://dx.doi.org/10.3390/nano11051143
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