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Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites

[Image: see text] Graphene has attracted lots of researchers attention because of its remarkable conductivity in both electrically and thermally. However, it has poor dispersibility in organic solvents which limited its applications. Polymers with aromatic end group which act as an intercalator were...

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Autores principales: Sim, Siewteng, Andou, Yoshito, Bashid, Hamra A. A., Lim, Hongngee, Altarawneh, Mohammednoor, Jiang, Zhongtao, Eksiler, Kubra, Iikubo, Satoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643836/
https://www.ncbi.nlm.nih.gov/pubmed/31458398
http://dx.doi.org/10.1021/acsomega.8b02478
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author Sim, Siewteng
Andou, Yoshito
Bashid, Hamra A. A.
Lim, Hongngee
Altarawneh, Mohammednoor
Jiang, Zhongtao
Eksiler, Kubra
Iikubo, Satoshi
author_facet Sim, Siewteng
Andou, Yoshito
Bashid, Hamra A. A.
Lim, Hongngee
Altarawneh, Mohammednoor
Jiang, Zhongtao
Eksiler, Kubra
Iikubo, Satoshi
author_sort Sim, Siewteng
collection PubMed
description [Image: see text] Graphene has attracted lots of researchers attention because of its remarkable conductivity in both electrically and thermally. However, it has poor dispersibility in organic solvents which limited its applications. Polymers with aromatic end group which act as an intercalator were prepared by ring-opening polymerization with ε-caprolactone by utilizing 1-naphthalene methanol (1-NM) as an initiator. These intercalators will exist between graphene oxide (GO) sheets to prevent aggregation via interactions. The attachment of 1-NM on polymer chains was supported by ultraviolet–visible spectra, size exclusion chromatography profiles, and (1)H nuclear magnetic resonance spectra. Exfoliated structured functionalized GO (fGO)/polycaprolactone (PCL) (synthesized fGO) nanocomposites that dispersed well in acetone, chloroform, N,N-dimethylformamide, dimethyl sulfoxide, tetrahydrofuran, and toluene were successfully synthesized. This agreed well with the enlarged interlayer spacing in the optimized fGO as compared to that of GO from density functional theory simulations using the DMol(3) module that implemented in the Materials Studio 6.0. Furthermore, its potential to be applied as green electronics in electronics, aerospace, and automotive industries was presented, by trailering the thermal conductivity enhancement from the incorporation of fGO/PCL with commercialized biodegradable polymers, PCL, and poly[(R)-3-hydroxybutyric acid].
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spelling pubmed-66438362019-08-27 Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites Sim, Siewteng Andou, Yoshito Bashid, Hamra A. A. Lim, Hongngee Altarawneh, Mohammednoor Jiang, Zhongtao Eksiler, Kubra Iikubo, Satoshi ACS Omega [Image: see text] Graphene has attracted lots of researchers attention because of its remarkable conductivity in both electrically and thermally. However, it has poor dispersibility in organic solvents which limited its applications. Polymers with aromatic end group which act as an intercalator were prepared by ring-opening polymerization with ε-caprolactone by utilizing 1-naphthalene methanol (1-NM) as an initiator. These intercalators will exist between graphene oxide (GO) sheets to prevent aggregation via interactions. The attachment of 1-NM on polymer chains was supported by ultraviolet–visible spectra, size exclusion chromatography profiles, and (1)H nuclear magnetic resonance spectra. Exfoliated structured functionalized GO (fGO)/polycaprolactone (PCL) (synthesized fGO) nanocomposites that dispersed well in acetone, chloroform, N,N-dimethylformamide, dimethyl sulfoxide, tetrahydrofuran, and toluene were successfully synthesized. This agreed well with the enlarged interlayer spacing in the optimized fGO as compared to that of GO from density functional theory simulations using the DMol(3) module that implemented in the Materials Studio 6.0. Furthermore, its potential to be applied as green electronics in electronics, aerospace, and automotive industries was presented, by trailering the thermal conductivity enhancement from the incorporation of fGO/PCL with commercialized biodegradable polymers, PCL, and poly[(R)-3-hydroxybutyric acid]. American Chemical Society 2018-12-24 /pmc/articles/PMC6643836/ /pubmed/31458398 http://dx.doi.org/10.1021/acsomega.8b02478 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Sim, Siewteng
Andou, Yoshito
Bashid, Hamra A. A.
Lim, Hongngee
Altarawneh, Mohammednoor
Jiang, Zhongtao
Eksiler, Kubra
Iikubo, Satoshi
Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title_full Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title_fullStr Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title_full_unstemmed Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title_short Development of Organo-Dispersible Graphene Oxide via Pseudo-Surface Modification for Thermally Conductive Green Polymer Composites
title_sort development of organo-dispersible graphene oxide via pseudo-surface modification for thermally conductive green polymer composites
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643836/
https://www.ncbi.nlm.nih.gov/pubmed/31458398
http://dx.doi.org/10.1021/acsomega.8b02478
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