Melt-Blended Multifunctional PEEK/Expanded Graphite Composites

In this work, antistatic, high-performance composites of poly (ether ether ketone) (PEEK) and concentrations of 0.5–7 vol% expanded graphite (EG) were fabricated via twin-screw extrusion and injection moulding at mould temperatures of 200°C. The morphological, electrical, rheological, thermal, mecha...

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Main Authors: Mozaffar Mokhtari, Edward Archer, Noel Bloomfield, Eileen Harkin-Jones, Alistair Mcilhagger
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-09-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2021.724958/full
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spelling doaj-da2ca1242c214ebfa01e5a63ad6dc1ca2021-09-15T04:43:24ZengFrontiers Media S.A.Frontiers in Materials2296-80162021-09-01810.3389/fmats.2021.724958724958Melt-Blended Multifunctional PEEK/Expanded Graphite CompositesMozaffar Mokhtari0Edward Archer1Noel Bloomfield2Eileen Harkin-Jones3Alistair Mcilhagger4School of Engineering, Ulster University, Newtownabbey, United KingdomSchool of Engineering, Ulster University, Newtownabbey, United KingdomDenroy Plastics, Bangor, United KingdomSchool of Engineering, Ulster University, Newtownabbey, United KingdomSchool of Engineering, Ulster University, Newtownabbey, United KingdomIn this work, antistatic, high-performance composites of poly (ether ether ketone) (PEEK) and concentrations of 0.5–7 vol% expanded graphite (EG) were fabricated via twin-screw extrusion and injection moulding at mould temperatures of 200°C. The morphological, electrical, rheological, thermal, mechanical, and wear properties of the composites were investigated. Scanning electron microscope (SEM) images indicate that distribution and dispersion of EG platelets in the PEEK matrix are enhanced at higher EG loadings. The electrical conductivity of the composites with 5 vol% of EG exhibits a sharp rise in the electrical conductivity range of antistatic materials because of the formation of conductive paths. The formation of a three-dimensional EG network led to a rapid increase in the storage modulus of the melt of the 2 vol% of EG-loaded composite at a frequency of 0.1 rad/s and temperature of 370°C. The neat PEEK and composites containing 0.5–5 vol% EG indicated a cold-crystallisation peak in the first heating scan of a non-isothermal differential scan calorimetry (DSC) test and their crystallinity degrees changed slightly. However, after removing their thermal and stress histories, the EG platelets promoted nucleation and increased the PEEK crystallinity remarkably, indicating that annealing of the PEEK composites can improve their mechanical performance. The neat PEEK exhibits the standard tensile and flexural stress-strain behaviour of thermoplastics, and the composites exhibit elastic behaviour initially followed by a weak plastic deformation before fracture. The addition of 5 vol% of EG to PEEK increased the tensile and flexural modulus from 3.84 and 3.55 GPa to 4.15 and 4.40 GPa, decreased the strength from 96.73 and 156.41 MPa to 62 and 118.19 MPa, and the elongation at break from 27.09 and 12.9% to 4 and 4.6%, respectively. The wear resistance of the composite containing 3 vol% EG was enhanced by 37% compared with the neat PEEK.https://www.frontiersin.org/articles/10.3389/fmats.2021.724958/fullhigh-temperature compositecost-effectiveexpanded graphiteantistaticwear resistancecold-crystallization
collection DOAJ
language English
format Article
sources DOAJ
author Mozaffar Mokhtari
Edward Archer
Noel Bloomfield
Eileen Harkin-Jones
Alistair Mcilhagger
spellingShingle Mozaffar Mokhtari
Edward Archer
Noel Bloomfield
Eileen Harkin-Jones
Alistair Mcilhagger
Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
Frontiers in Materials
high-temperature composite
cost-effective
expanded graphite
antistatic
wear resistance
cold-crystallization
author_facet Mozaffar Mokhtari
Edward Archer
Noel Bloomfield
Eileen Harkin-Jones
Alistair Mcilhagger
author_sort Mozaffar Mokhtari
title Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
title_short Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
title_full Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
title_fullStr Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
title_full_unstemmed Melt-Blended Multifunctional PEEK/Expanded Graphite Composites
title_sort melt-blended multifunctional peek/expanded graphite composites
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2021-09-01
description In this work, antistatic, high-performance composites of poly (ether ether ketone) (PEEK) and concentrations of 0.5–7 vol% expanded graphite (EG) were fabricated via twin-screw extrusion and injection moulding at mould temperatures of 200°C. The morphological, electrical, rheological, thermal, mechanical, and wear properties of the composites were investigated. Scanning electron microscope (SEM) images indicate that distribution and dispersion of EG platelets in the PEEK matrix are enhanced at higher EG loadings. The electrical conductivity of the composites with 5 vol% of EG exhibits a sharp rise in the electrical conductivity range of antistatic materials because of the formation of conductive paths. The formation of a three-dimensional EG network led to a rapid increase in the storage modulus of the melt of the 2 vol% of EG-loaded composite at a frequency of 0.1 rad/s and temperature of 370°C. The neat PEEK and composites containing 0.5–5 vol% EG indicated a cold-crystallisation peak in the first heating scan of a non-isothermal differential scan calorimetry (DSC) test and their crystallinity degrees changed slightly. However, after removing their thermal and stress histories, the EG platelets promoted nucleation and increased the PEEK crystallinity remarkably, indicating that annealing of the PEEK composites can improve their mechanical performance. The neat PEEK exhibits the standard tensile and flexural stress-strain behaviour of thermoplastics, and the composites exhibit elastic behaviour initially followed by a weak plastic deformation before fracture. The addition of 5 vol% of EG to PEEK increased the tensile and flexural modulus from 3.84 and 3.55 GPa to 4.15 and 4.40 GPa, decreased the strength from 96.73 and 156.41 MPa to 62 and 118.19 MPa, and the elongation at break from 27.09 and 12.9% to 4 and 4.6%, respectively. The wear resistance of the composite containing 3 vol% EG was enhanced by 37% compared with the neat PEEK.
topic high-temperature composite
cost-effective
expanded graphite
antistatic
wear resistance
cold-crystallization
url https://www.frontiersin.org/articles/10.3389/fmats.2021.724958/full
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