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Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance

[Image: see text] Graphene oxide (GO) has recently been highlighted as a promising multipurpose two-dimensional material. However, free-standing graphene oxide films suffer from poor strength and flexibility, which limits scaling-up of production and lifetime structural robustness in applications. I...

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Autores principales: Liang, Kuang, Spiesz, Ewa M., Schmieden, Dominik T., Xu, An-Wu, Meyer, Anne S., Aubin-Tam, Marie-Eve
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7690046/
https://www.ncbi.nlm.nih.gov/pubmed/33146012
http://dx.doi.org/10.1021/acsnano.0c00913
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author Liang, Kuang
Spiesz, Ewa M.
Schmieden, Dominik T.
Xu, An-Wu
Meyer, Anne S.
Aubin-Tam, Marie-Eve
author_facet Liang, Kuang
Spiesz, Ewa M.
Schmieden, Dominik T.
Xu, An-Wu
Meyer, Anne S.
Aubin-Tam, Marie-Eve
author_sort Liang, Kuang
collection PubMed
description [Image: see text] Graphene oxide (GO) has recently been highlighted as a promising multipurpose two-dimensional material. However, free-standing graphene oxide films suffer from poor strength and flexibility, which limits scaling-up of production and lifetime structural robustness in applications. Inspired by the relationship between the organic and inorganic components of the hierarchical structure of nacre found in mollusk shells, we have fabricated self-assembled, layered graphene-based composite films. The organic phase of our composite is produced via environmentally friendly and economical methods based on bacterial production of γ-poly(glutamic acid) (PGA). Composite films made of GO, PGA, and divalent cations (Ca(2+)) were prepared through a slow solvent evaporation method at ambient temperature, resulting in a nacre-like layered structure. These biobased nanocomposite films showed impressive mechanical properties, which resulted from a synergistic combination of hydrogen bonding with the bacterially produced PGA and ionic bonding with calcium ions (Ca(2+)). The GO/PGA/Ca(2+) composite films possessed a high strength of 150 ± 51.9 MPa and a high Young’s modulus of 21.4 ± 8.7 GPa, which represents an increase of 120% and over 70% with respect to pure GO films. We provide rational design strategies for the production of graphene-based films with improved mechanical performance, which can be applied in filtration purification of wastewater in the paper, food, beverage, pigment, and pharmaceuticals industries, as well as for manufacturing of functional membranes and surface coatings.
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spelling pubmed-76900462020-11-27 Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance Liang, Kuang Spiesz, Ewa M. Schmieden, Dominik T. Xu, An-Wu Meyer, Anne S. Aubin-Tam, Marie-Eve ACS Nano [Image: see text] Graphene oxide (GO) has recently been highlighted as a promising multipurpose two-dimensional material. However, free-standing graphene oxide films suffer from poor strength and flexibility, which limits scaling-up of production and lifetime structural robustness in applications. Inspired by the relationship between the organic and inorganic components of the hierarchical structure of nacre found in mollusk shells, we have fabricated self-assembled, layered graphene-based composite films. The organic phase of our composite is produced via environmentally friendly and economical methods based on bacterial production of γ-poly(glutamic acid) (PGA). Composite films made of GO, PGA, and divalent cations (Ca(2+)) were prepared through a slow solvent evaporation method at ambient temperature, resulting in a nacre-like layered structure. These biobased nanocomposite films showed impressive mechanical properties, which resulted from a synergistic combination of hydrogen bonding with the bacterially produced PGA and ionic bonding with calcium ions (Ca(2+)). The GO/PGA/Ca(2+) composite films possessed a high strength of 150 ± 51.9 MPa and a high Young’s modulus of 21.4 ± 8.7 GPa, which represents an increase of 120% and over 70% with respect to pure GO films. We provide rational design strategies for the production of graphene-based films with improved mechanical performance, which can be applied in filtration purification of wastewater in the paper, food, beverage, pigment, and pharmaceuticals industries, as well as for manufacturing of functional membranes and surface coatings. American Chemical Society 2020-11-04 2020-11-24 /pmc/articles/PMC7690046/ /pubmed/33146012 http://dx.doi.org/10.1021/acsnano.0c00913 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Liang, Kuang
Spiesz, Ewa M.
Schmieden, Dominik T.
Xu, An-Wu
Meyer, Anne S.
Aubin-Tam, Marie-Eve
Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title_full Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title_fullStr Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title_full_unstemmed Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title_short Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance
title_sort bioproduced polymers self-assemble with graphene oxide into nanocomposite films with enhanced mechanical performance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7690046/
https://www.ncbi.nlm.nih.gov/pubmed/33146012
http://dx.doi.org/10.1021/acsnano.0c00913
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