Materials Map

Discover the materials research landscape. Find experts, partners, networks.

  • About
  • Privacy Policy
  • Legal Notice
  • Contact

The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

×

Materials Map under construction

The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

To Graph

1.080 Topics available

To Map

977 Locations available

693.932 PEOPLE
693.932 People People

693.932 People

Show results for 693.932 people that are selected by your search filters.

←

Page 1 of 27758

→
←

Page 1 of 0

→
PeopleLocationsStatistics
Naji, M.
  • 2
  • 13
  • 3
  • 2025
Motta, Antonella
  • 8
  • 52
  • 159
  • 2025
Aletan, Dirar
  • 1
  • 1
  • 0
  • 2025
Mohamed, Tarek
  • 1
  • 7
  • 2
  • 2025
Ertürk, Emre
  • 2
  • 3
  • 0
  • 2025
Taccardi, Nicola
  • 9
  • 81
  • 75
  • 2025
Kononenko, Denys
  • 1
  • 8
  • 2
  • 2025
Petrov, R. H.Madrid
  • 46
  • 125
  • 1k
  • 2025
Alshaaer, MazenBrussels
  • 17
  • 31
  • 172
  • 2025
Bih, L.
  • 15
  • 44
  • 145
  • 2025
Casati, R.
  • 31
  • 86
  • 661
  • 2025
Muller, Hermance
  • 1
  • 11
  • 0
  • 2025
Kočí, JanPrague
  • 28
  • 34
  • 209
  • 2025
Šuljagić, Marija
  • 10
  • 33
  • 43
  • 2025
Kalteremidou, Kalliopi-ArtemiBrussels
  • 14
  • 22
  • 158
  • 2025
Azam, Siraj
  • 1
  • 3
  • 2
  • 2025
Ospanova, Alyiya
  • 1
  • 6
  • 0
  • 2025
Blanpain, Bart
  • 568
  • 653
  • 13k
  • 2025
Ali, M. A.
  • 7
  • 75
  • 187
  • 2025
Popa, V.
  • 5
  • 12
  • 45
  • 2025
Rančić, M.
  • 2
  • 13
  • 0
  • 2025
Ollier, Nadège
  • 28
  • 75
  • 239
  • 2025
Azevedo, Nuno Monteiro
  • 4
  • 8
  • 25
  • 2025
Landes, Michael
  • 1
  • 9
  • 2
  • 2025
Rignanese, Gian-Marco
  • 15
  • 98
  • 805
  • 2025

Sun, Dan

  • Google
  • 14
  • 42
  • 419

Queen's University Belfast

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (14/14 displayed)

  • 2022Investigating hole making performance of Al 2024-T3/Ti-6Al-4V alloy stacks: A comparative study of conventional drilling, peck drilling and helical milling16citations
  • 2021Characterizing Biaxiallly Stretched Polypropylene / Graphene Nanoplatelet Composites11citations
  • 2021Characterizing Biaxiallly Stretched Polypropylene / Graphene Nanoplatelet Composites11citations
  • 2020The analysis of dissolved inorganic carbon in liquid using a microfluidic conductivity sensor with membrane separation of CO213citations
  • 2017CHARACTERIZING BIAXIALLY STRETCHED POLYPROPYLENE/GRAPHENE NANOPLATELET COMPOSITEScitations
  • 2016Optimization and Prediction of Mechanical and Thermal Properties of Graphene/LLDPE Nanocomposites by Using Artificial Neural Networks32citations
  • 2016Melt processing and properties of linear low density polyethylene-graphene nanoplatelet composites83citations
  • 2016Melt processing and properties of linear low density polyethylene-graphene nanoplatelet composites83citations
  • 2015Melt Processing and Properties of Polyamide 6/Graphene Nanoplatelet Composites93citations
  • 2015Characterisation of melt processed nanocomposites of Polyamide 6 subjected to uniaxial-drawingcitations
  • 2015Characterisation of melt processed nanocomposites of Polyamide 6 subjected to uniaxial-drawingcitations
  • 2009A '3-body' abrasion wear study of bioceramics for total hip joint replacements8citations
  • 2009Abrasive size and concentration effects on the tribo-corrosion of cast CoCrMo alloy in simulated body fluids30citations
  • 2009Micro-abrasion mechanisms of cast CoCrMo in simulated body fluids39citations

Places of action

Chart of shared publication
Mcclelland, John
1 / 8 shared
Higgins, Colm
1 / 6 shared
Mclaughlin, Brian
1 / 1 shared
Reji, Rincy
1 / 1 shared
Feist, Toby
1 / 1 shared
Jin, Yan
1 / 10 shared
Ge, Jia
1 / 1 shared
Elmore, Alexander
1 / 1 shared
Khanam, Noor
3 / 3 shared
Lahuerta, Beatriz Mayoral
1 / 1 shared
Menary, Gary
2 / 18 shared
Millar, Bronagh
2 / 13 shared
Martin, Peter
2 / 26 shared
Ouederni, Mabrouk
4 / 4 shared
Hamilton, Andrew
6 / 11 shared
Almaadeed, Mariam
3 / 3 shared
Garrett, Graham
2 / 6 shared
Douglas, Paula
2 / 8 shared
Mayoral Lahuerta, Beatriz
1 / 1 shared
Gajula, Durga Rao
1 / 4 shared
Tweedie, Mark
3 / 4 shared
Ward, Brian
1 / 4 shared
Maguire, Paul
1 / 22 shared
Mayoral, Beatriz
6 / 11 shared
Ouederni, M.
5 / 7 shared
Harkin-Jones, Eileen
6 / 46 shared
Hamilton, Andrew R.
3 / 16 shared
Khanam, P. Noorunnisa
3 / 5 shared
Kunhoth, Suchithra
1 / 2 shared
Almaadeed, M. A.
4 / 7 shared
Almaadeed, Sumaaya
1 / 2 shared
Noorunnisa Khanam, P.
1 / 1 shared
Harkin-Jones, E.
1 / 8 shared
Mayoral, B.
1 / 2 shared
Patan, Noorunnisa Khanam
1 / 2 shared
Al-Maadeed, Mariam Alali
1 / 1 shared
Khanam Patan, Noorunnisa
1 / 1 shared
Alali Al-Maadeed, Mariam
1 / 1 shared
Wood, R. J. K.
3 / 11 shared
Rainforth, W. M.
1 / 44 shared
Ma, L.
1 / 10 shared
Wharton, J. A.
3 / 7 shared
Chart of publication period
2022
2021
2020
2017
2016
2015
2009

Co-Authors (by relevance)

  • Mcclelland, John
  • Higgins, Colm
  • Mclaughlin, Brian
  • Reji, Rincy
  • Feist, Toby
  • Jin, Yan
  • Ge, Jia
  • Elmore, Alexander
  • Khanam, Noor
  • Lahuerta, Beatriz Mayoral
  • Menary, Gary
  • Millar, Bronagh
  • Martin, Peter
  • Ouederni, Mabrouk
  • Hamilton, Andrew
  • Almaadeed, Mariam
  • Garrett, Graham
  • Douglas, Paula
  • Mayoral Lahuerta, Beatriz
  • Gajula, Durga Rao
  • Tweedie, Mark
  • Ward, Brian
  • Maguire, Paul
  • Mayoral, Beatriz
  • Ouederni, M.
  • Harkin-Jones, Eileen
  • Hamilton, Andrew R.
  • Khanam, P. Noorunnisa
  • Kunhoth, Suchithra
  • Almaadeed, M. A.
  • Almaadeed, Sumaaya
  • Noorunnisa Khanam, P.
  • Harkin-Jones, E.
  • Mayoral, B.
  • Patan, Noorunnisa Khanam
  • Al-Maadeed, Mariam Alali
  • Khanam Patan, Noorunnisa
  • Alali Al-Maadeed, Mariam
  • Wood, R. J. K.
  • Rainforth, W. M.
  • Ma, L.
  • Wharton, J. A.
OrganizationsLocationPeople

article

Melt Processing and Properties of Polyamide 6/Graphene Nanoplatelet Composites

  • Harkin-Jones, E.
  • Sun, Dan
  • Ouederni, M.
  • Hamilton, Andrew R.
  • Khanam, P. Noorunnisa
  • Almaadeed, M. A.
  • Mayoral, B.
Abstract

In this paper, the processing and characterization of Polyamide 6 (PA6) / graphite nanoplatelets<br/>(GNPs) composites is reported. PA6/GNPs composites were prepared by melt-mixing using an<br/>industrial, co-rotating, intermeshing, twin-screw extruder. A bespoke screw configuration was used<br/>that was designed in-house to enhance nanoparticle dispersion into a polymer matrix. The effects of<br/>GNPs type (xGnP® M-5 and xGnP® C-500), GNPs content, and extruder screw speed on the bulk<br/>properties of the PA6/GNPs nanocomposites were investigated. Results show a considerable<br/>improvement in the thermal and mechanical properties of PA6/GNPs composites, as compared with<br/>the unfilled PA6 polymer. An increase in crystallinity (%Xc) with increasing GNPs content, and a<br/>change in shape of the crystallization exotherms (broadening) and melting endotherms, both suggest a<br/>change in the crystal type and perfection. An increase in tensile modulus of as much as 376% and<br/>412% was observed for PA6/M-5 xGnP® and PA6/C-500 xGnP® composites, respectively, at filler<br/>contents of 20wt%. The enhancement of Young’s modulus and yield stress can be attributed to the<br/>reinforcing effect of GNPs and their uniform dispersion in the PA6 matrix. The rheological response<br/>of the composite resembles that of a ‘pseudo-solid’, rather than a molten liquid, and analysis of the<br/>rheological data indicates that a percolation threshold was reached at GNPs contents of between 10–<br/>15wt%. The electrical conductivity of the composite also increased with increasing GNPs content,<br/>with an addition of 15wt% GNPs resulting in a 6 order-of-magnitude increase in conductivity. The<br/>electrical percolation thresholds of all composites were between 10–15wt%.

Topics
  • nanoparticle
  • nanocomposite
  • impedance spectroscopy
  • dispersion
  • polymer
  • melt
  • extrusion
  • twin screw extrusion
  • composite
  • thermoplastic
  • electrical conductivity
  • crystallization
  • crystallinity