Materials Map

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

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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.

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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.

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1.080 Topics available

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Naji, M.
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Niittymäki, Minna

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Tampere University

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (33/33 displayed)

  • 2024Screening of suitable random copolymer polypropylene blends for HVDC cable insulation3citations
  • 2024Characterization of Isotactic-Polypropylene-Based Compounds for HVDC Cable Insulation5citations
  • 2023Molecular Layer Deposition of Polyurea on Silica Nanoparticles and Its Application in Dielectric Nanocomposites3citations
  • 2023Molecular Layer Deposition of Polyurea on Silica Nanoparticles and Its Application in Dielectric Nanocomposites3citations
  • 2022Biaxially oriented silica–polypropylene nanocomposites for HVDC film capacitors40citations
  • 2022Biaxially oriented silica–polypropylene nanocomposites for HVDC film capacitors: morphology-dielectric property relationships, and critical evaluation of the current progress and limitations40citations
  • 2022Biaxially oriented silica–polypropylene nanocomposites for HVDC film capacitors : morphology-dielectric property relationships, and critical evaluation of the current progress and limitations40citations
  • 2021Dielectric performance of silica-filled nanocomposites based on miscible (PP/PP-HI) and immiscible (PP/EOC) polymer blends14citations
  • 2021Dielectric performance of silica-filled nanocomposites based on miscible (PP/PP-HI) and immiscible (PP/EOC) polymer blends14citations
  • 2021PP/PP-HI/silica nanocomposites for HVDC cable insulation : Are silica clusters beneficial for space charge accumulation?7citations
  • 2021Combining good dispersion with tailored charge trapping in nanodielectrics by hybrid functionalization of silica3citations
  • 2021Combining good dispersion with tailored charge trapping in nanodielectrics by hybrid functionalization of silica3citations
  • 2021PP/PP-HI/silica nanocomposites for HVDC cable insulation: Are silica clusters beneficial for space charge accumulation?7citations
  • 2021PP/PP-HI/silica nanocomposites for HVDC cable insulation:Are silica clusters beneficial for space charge accumulation?7citations
  • 2021Deposition of Ureido and Methacrylate Functionalities onto Silica Nanoparticles and Its Effect on the Properties of Polypropylene-Based Nanodielectrics4citations
  • 2021PP/PP-HI/silica nanocomposites for HVDC cable insulation7citations
  • 2020Influence of polar and unpolar silica functionalization on the dielectric properties of PP/POE nanocomposites2citations
  • 2020Influence of polar and unpolar silica functionalization on the dielectric properties of PP/POE nanocomposites2citations
  • 2020Influence of polar and unpolar silica functionalization on the dielectric properties of PP/POE nanocomposites2citations
  • 2020Feasibility of Mini-Scale Injection Molding for Resource-Efficient Screening of PP-Based Cable Insulation Nanocomposites1citations
  • 2020From Laboratory to Industrial Scale : Comparison of Short- and Long-Term Dielectric Performance of Silica-Polypropylene Capacitor Films1citations
  • 2019Silica-Polypropylene Nanocomposites for Film Capacitors2citations
  • 2019Silica-Polypropylene Nanocomposites for Film Capacitors: Structure–Property Studies and the Role of Biaxial Stretching Conditions2citations
  • 2019Silica-Polypropylene Nanocomposites for Film Capacitors:Structure–Property Studies and the Role of Biaxial Stretching Conditions2citations
  • 2018Effect of temperature and humidity on dielectric properties of thermally sprayed alumina coatings20citations
  • 2017DC conduction and breakdown behavior of thermally sprayed ceramic coatings10citations
  • 2016Differences in AC and DC large-area breakdown behavior of polymer thin films14citations
  • 2016Role of microstructure in dielectric properties of thermally sprayed ceramic coatings7citations
  • 2015Electric field dependency of dielectric behavior of thermally sprayed ceramic coatings8citations
  • 2015DC Dielectric Breakdown Behavior of Thermally Sprayed Ceramic Coatings4citations
  • 2015Dielectric Breakdown Strength of Thermally Sprayed Ceramic Coatings15citations
  • 2014Influence of humidity and temperature on the dielectric properties of thermally sprayed ceramic MgAl2O4 coatings10citations
  • 2013Dielectric properties of HVOF sprayed ceramic coatings8citations

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Chart of shared publication
Saarimäki, Eetta
19 / 42 shared
Wurm, Frederik
2 / 5 shared
Mazzanti, Giovanni
2 / 5 shared
Lahti, Kari
32 / 76 shared
Rytöluoto, Ilkka
26 / 68 shared
Mourad, Maya
2 / 4 shared
Leproux, Anais
2 / 4 shared
Rheinberger, Timo
2 / 8 shared
Diban, Bassel
2 / 5 shared
Seri, Paolo
16 / 34 shared
Paajanen, Mika
23 / 83 shared
Anyszka, Rafal
14 / 33 shared
Palmieri, Lorenzo
1 / 2 shared
La Zara, Damiano
1 / 4 shared
Blume, Anke
13 / 36 shared
Dierkes, Wilma
14 / 35 shared
Mahtabani, Amirhossein
15 / 36 shared
Saedy, Saeed
1 / 3 shared
He, Xiaozhen
15 / 36 shared
Van Ommen, J. Ruud
1 / 4 shared
La Zara, D.
1 / 7 shared
Anyszka, Rafał
3 / 9 shared
Saedy, S.
1 / 3 shared
Van Ommen, J. R.
1 / 13 shared
Flyktman, Timo
6 / 10 shared
Naderiallaf, Hadi
13 / 21 shared
Saarimaki, Eetta
5 / 22 shared
Perego, Gabriele
9 / 10 shared
Mazel, Christelle
9 / 10 shared
Pelto, Jani
1 / 30 shared
Karttunen, Mikko
4 / 42 shared
Metsäjoki, Jarkko
8 / 33 shared
Suhonen, Tomi
8 / 50 shared
Ritamäki, Mikael
1 / 11 shared
Kanerva, Ulla
2 / 22 shared
Chart of publication period
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Co-Authors (by relevance)

  • Saarimäki, Eetta
  • Wurm, Frederik
  • Mazzanti, Giovanni
  • Lahti, Kari
  • Rytöluoto, Ilkka
  • Mourad, Maya
  • Leproux, Anais
  • Rheinberger, Timo
  • Diban, Bassel
  • Seri, Paolo
  • Paajanen, Mika
  • Anyszka, Rafal
  • Palmieri, Lorenzo
  • La Zara, Damiano
  • Blume, Anke
  • Dierkes, Wilma
  • Mahtabani, Amirhossein
  • Saedy, Saeed
  • He, Xiaozhen
  • Van Ommen, J. Ruud
  • La Zara, D.
  • Anyszka, Rafał
  • Saedy, S.
  • Van Ommen, J. R.
  • Flyktman, Timo
  • Naderiallaf, Hadi
  • Saarimaki, Eetta
  • Perego, Gabriele
  • Mazel, Christelle
  • Pelto, Jani
  • Karttunen, Mikko
  • Metsäjoki, Jarkko
  • Suhonen, Tomi
  • Ritamäki, Mikael
  • Kanerva, Ulla
OrganizationsLocationPeople

article

Dielectric performance of silica-filled nanocomposites based on miscible (PP/PP-HI) and immiscible (PP/EOC) polymer blends

  • Saarimaki, Eetta
  • Lahti, Kari
  • Perego, Gabriele
  • Rytöluoto, Ilkka
  • Niittymäki, Minna
  • Blume, Anke
  • Dierkes, Wilma
  • Naderiallaf, Hadi
  • Mahtabani, Amirhossein
  • Mazel, Christelle
  • He, Xiaozhen
  • Seri, Paolo
  • Paajanen, Mika
  • Anyszka, Rafal
Abstract

This study compares different polymer-nanofiller blends concerning their suitability for application as insulating thermoplastic composites for High Voltage Direct Current (HVDC) cable application. Two polymer blends, PP/EOC (polypropylene/ethylene-octene copolymer) and PP/PP-HI (polypropylene/ propylene-ethylene copolymer) and their nanocomposites filled with 2 wt.% of fumed silica modified with 3-aminopropyltriethoxysilane were studied. Morphology, thermal stability, crystallization behavior dynamic relaxation, conductivity, charge trap distribution and space charge behavior were studied respectively. The results showed that the comprehensive performance of the PP/PP-HI composite is better than the one of the PP/EOC composite due to better polymer miscibility and flexibility, as well as lower charging current density and space charge accumulation. Nanosilica addition improves the thermal stability and dielectric properties of both polymer blends. The filler acts as nucleating agent increasing the crystallization temperature, but decreasing the degree of crystallinity. Dynamic mechanical analysis results revealed three polymer relaxation transitions: PP glass transition (β), weak crystal reorientation (α1) and melting (α2). The nanosilica introduced deep traps in the polymer blends and suppressed space charge accumulation, but slightly increased the conductivity. A hypothesis for the correlation of charge trap distribution and polymer chain transition peaks is developed: In unfilled PP/EOC and PP/PP-HI matrices, charges are mostly located at the crystalline-amorphous interface, whereas in the filled PP/EOC/silica and PP/PP-HI /silica composites, charges are mostly located at the nanosilica-polymer interface. Overall, the PP/PP-HI (55/45) nanocomposite with 2 wt.% modified silica and 0.3 wt.% of antioxidants making it a promising material for PP based HVDC cable insulation application with a reduced space charge accumulation and good mechanical properties.

Topics
  • nanocomposite
  • density
  • impedance spectroscopy
  • amorphous
  • glass
  • glass
  • current density
  • copolymer
  • thermoplastic
  • crystallization
  • crystallinity
  • crystallization temperature
  • dynamic mechanical analysis
  • polymer blend