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Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application

[Image: see text] Dispersion of graphene and related materials in water is needed to enable sustainable processing of these 2D materials. In this work, we demonstrate the capability of branched polyethylenimine (BPEI) and polyacrylic acid (PAA) to stabilize reduced graphite oxide (rGO) dispersions i...

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Autores principales: Maddalena, Lorenza, Benselfelt, Tobias, Gomez, Julio, Hamedi, Mahiar Max, Fina, Alberto, Wågberg, Lars, Carosio, Federico
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8447182/
https://www.ncbi.nlm.nih.gov/pubmed/34474558
http://dx.doi.org/10.1021/acsami.1c08889
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author Maddalena, Lorenza
Benselfelt, Tobias
Gomez, Julio
Hamedi, Mahiar Max
Fina, Alberto
Wågberg, Lars
Carosio, Federico
author_facet Maddalena, Lorenza
Benselfelt, Tobias
Gomez, Julio
Hamedi, Mahiar Max
Fina, Alberto
Wågberg, Lars
Carosio, Federico
author_sort Maddalena, Lorenza
collection PubMed
description [Image: see text] Dispersion of graphene and related materials in water is needed to enable sustainable processing of these 2D materials. In this work, we demonstrate the capability of branched polyethylenimine (BPEI) and polyacrylic acid (PAA) to stabilize reduced graphite oxide (rGO) dispersions in water. Atomic force microscopy colloidal probe measurements were carried out to investigate the interaction mechanisms between rGO and the polyelectrolytes (PEs). Our results show that for positive PEs, the interaction appears electrostatic, originating from the weak negative charge of graphene in water. For negative PEs, however, van der Waals forces may result in the formation of a PE shell on rGO. The PE-stabilized rGO dispersions were then used for the preparation of coatings to enhance gas barrier properties of polyethylene terephthalate films using the layer-by-layer self-assembly. Ten bilayers of rGO(BPEI)/rGO(PAA) resulted in coatings with excellent barrier properties as demonstrated by oxygen transmission rates below detection limits [<0.005 cm(3)/(m(2) day atm)]. The observed excellent performance is ascribed to both the high density of the deposited coating and its efficient stratification. These results can enable the design of highly efficient gas barrier solutions for demanding applications, including oxygen-sensitive pharmaceutical products or flexible electronic devices.
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spelling pubmed-84471822021-09-20 Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application Maddalena, Lorenza Benselfelt, Tobias Gomez, Julio Hamedi, Mahiar Max Fina, Alberto Wågberg, Lars Carosio, Federico ACS Appl Mater Interfaces [Image: see text] Dispersion of graphene and related materials in water is needed to enable sustainable processing of these 2D materials. In this work, we demonstrate the capability of branched polyethylenimine (BPEI) and polyacrylic acid (PAA) to stabilize reduced graphite oxide (rGO) dispersions in water. Atomic force microscopy colloidal probe measurements were carried out to investigate the interaction mechanisms between rGO and the polyelectrolytes (PEs). Our results show that for positive PEs, the interaction appears electrostatic, originating from the weak negative charge of graphene in water. For negative PEs, however, van der Waals forces may result in the formation of a PE shell on rGO. The PE-stabilized rGO dispersions were then used for the preparation of coatings to enhance gas barrier properties of polyethylene terephthalate films using the layer-by-layer self-assembly. Ten bilayers of rGO(BPEI)/rGO(PAA) resulted in coatings with excellent barrier properties as demonstrated by oxygen transmission rates below detection limits [<0.005 cm(3)/(m(2) day atm)]. The observed excellent performance is ascribed to both the high density of the deposited coating and its efficient stratification. These results can enable the design of highly efficient gas barrier solutions for demanding applications, including oxygen-sensitive pharmaceutical products or flexible electronic devices. American Chemical Society 2021-09-03 2021-09-15 /pmc/articles/PMC8447182/ /pubmed/34474558 http://dx.doi.org/10.1021/acsami.1c08889 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Maddalena, Lorenza
Benselfelt, Tobias
Gomez, Julio
Hamedi, Mahiar Max
Fina, Alberto
Wågberg, Lars
Carosio, Federico
Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title_full Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title_fullStr Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title_full_unstemmed Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title_short Polyelectrolyte-Assisted Dispersions of Reduced Graphite Oxide Nanoplates in Water and Their Gas-Barrier Application
title_sort polyelectrolyte-assisted dispersions of reduced graphite oxide nanoplates in water and their gas-barrier application
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8447182/
https://www.ncbi.nlm.nih.gov/pubmed/34474558
http://dx.doi.org/10.1021/acsami.1c08889
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