Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process

Composites of LDPE filled with different amounts of graphene nanoplatelets (GnP) were prepared in form of films by means of precoating technique and single screw melt-extrusion using two types of screws, compression and mixing. This manufacturing process imposes strong anisotropy on the sample’s mor...

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Main Authors: Karolina Gaska, Xiangdong Xu, Stanislaw Gubanski, Roland Kádár
Format: Article
Language:English
Published: MDPI AG 2017-01-01
Series:Polymers
Subjects:
Online Access:http://www.mdpi.com/2073-4360/9/1/11
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spelling doaj-710041ad81ad4931a5ba736428ad75d12020-11-24T20:58:45ZengMDPI AGPolymers2073-43602017-01-01911110.3390/polym9010011polym9010011Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion ProcessKarolina Gaska0Xiangdong Xu1Stanislaw Gubanski2Roland Kádár3Department of Materials and Manufacturing Technology, Chalmers University of Technology, SE 412-96 Gothenburg, SwedenDepartment of Materials and Manufacturing Technology, Chalmers University of Technology, SE 412-96 Gothenburg, SwedenDepartment of Materials and Manufacturing Technology, Chalmers University of Technology, SE 412-96 Gothenburg, SwedenDepartment of Materials and Manufacturing Technology, Chalmers University of Technology, SE 412-96 Gothenburg, SwedenComposites of LDPE filled with different amounts of graphene nanoplatelets (GnP) were prepared in form of films by means of precoating technique and single screw melt-extrusion using two types of screws, compression and mixing. This manufacturing process imposes strong anisotropy on the sample’s morphology, in which the nanoplatelets become oriented along the extrusion direction. Such orientation of GnP in LDPE matrix is confirmed by scanning electron microscopy observations and it yields unique electrical properties. As compared to pure LDPE, significant reductions of the through-plane conductivity are found for the composites at relatively low electric fields (<20 kV/mm) at low filler concentrations. Above the field level of 20 kV/mm, a crossover effect is observed that results in a strong field dependency of the conductivity where the non-linear behavior starts to dominate. Moreover, differential scanning calorimetry (DSC) results indicate a decrease in polymer crystallinity of the composite matrix with increasing filler content, whereas thermogravimetric (TG) analysis shows a slight increase in the material’s thermal stability. Application of GnP also leads to improvement of mechanical properties, manifested by the increase of Young’s modulus and tensile strength in both types of samples.http://www.mdpi.com/2073-4360/9/1/11graphene nanocompositeslow density polyethylenefield grading materialselectrical conductivitydielectric responsemechanical propertiesthermal properties
collection DOAJ
language English
format Article
sources DOAJ
author Karolina Gaska
Xiangdong Xu
Stanislaw Gubanski
Roland Kádár
spellingShingle Karolina Gaska
Xiangdong Xu
Stanislaw Gubanski
Roland Kádár
Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
Polymers
graphene nanocomposites
low density polyethylene
field grading materials
electrical conductivity
dielectric response
mechanical properties
thermal properties
author_facet Karolina Gaska
Xiangdong Xu
Stanislaw Gubanski
Roland Kádár
author_sort Karolina Gaska
title Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
title_short Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
title_full Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
title_fullStr Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
title_full_unstemmed Electrical, Mechanical, and Thermal Properties of LDPE Graphene Nanoplatelets Composites Produced by Means of Melt Extrusion Process
title_sort electrical, mechanical, and thermal properties of ldpe graphene nanoplatelets composites produced by means of melt extrusion process
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2017-01-01
description Composites of LDPE filled with different amounts of graphene nanoplatelets (GnP) were prepared in form of films by means of precoating technique and single screw melt-extrusion using two types of screws, compression and mixing. This manufacturing process imposes strong anisotropy on the sample’s morphology, in which the nanoplatelets become oriented along the extrusion direction. Such orientation of GnP in LDPE matrix is confirmed by scanning electron microscopy observations and it yields unique electrical properties. As compared to pure LDPE, significant reductions of the through-plane conductivity are found for the composites at relatively low electric fields (<20 kV/mm) at low filler concentrations. Above the field level of 20 kV/mm, a crossover effect is observed that results in a strong field dependency of the conductivity where the non-linear behavior starts to dominate. Moreover, differential scanning calorimetry (DSC) results indicate a decrease in polymer crystallinity of the composite matrix with increasing filler content, whereas thermogravimetric (TG) analysis shows a slight increase in the material’s thermal stability. Application of GnP also leads to improvement of mechanical properties, manifested by the increase of Young’s modulus and tensile strength in both types of samples.
topic graphene nanocomposites
low density polyethylene
field grading materials
electrical conductivity
dielectric response
mechanical properties
thermal properties
url http://www.mdpi.com/2073-4360/9/1/11
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