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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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.

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Berecibar, Maitane

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Vrije Universiteit Brussel

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (5/5 displayed)

  • 2024Advances in inorganic, polymer and composite electrolytes: Mechanisms of Lithium-ion transport and pathways to enhanced performance47citations
  • 2023Development of composite solid polymer electrolyte for solid-state lithium battery: Incorporating LLZTO in PVDF-HFP/LiTFSI18citations
  • 2022A Review on Digitalization Approaches for Battery Manufacturing Processescitations
  • 2022Improved Performance of Solid Polymer Electrolyte for Lithium-Metal Batteries via Hot Press Rolling13citations
  • 2021High-performance amorphous carbon coated lini0.6mn0.2co0.2o2 cathode material with improved capacity retention for lithium-ion batteries12citations

Places of action

Chart of shared publication
Dermenci, Kamil Burak
2 / 2 shared
Yadav, Poonam
4 / 9 shared
Van Mierlo, Joeri
5 / 16 shared
Daems, Kato
1 / 1 shared
Dammala, Pradeep Kumar
2 / 2 shared
Hosen, Md Sazzad
1 / 1 shared
Kathribail, Anish Raj
3 / 3 shared
Beheshti, Seyed Hamidreza
1 / 1 shared
Kahr, Jürgen
1 / 1 shared
Lager, Daniel
1 / 2 shared
Surace, Yuri
1 / 4 shared
Hubin, Annick
1 / 56 shared
Rezqita, Arlavinda
1 / 1 shared
Hamid, Raad
1 / 1 shared
Jahn, Marcus
1 / 7 shared
Chart of publication period
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Co-Authors (by relevance)

  • Dermenci, Kamil Burak
  • Yadav, Poonam
  • Van Mierlo, Joeri
  • Daems, Kato
  • Dammala, Pradeep Kumar
  • Hosen, Md Sazzad
  • Kathribail, Anish Raj
  • Beheshti, Seyed Hamidreza
  • Kahr, Jürgen
  • Lager, Daniel
  • Surace, Yuri
  • Hubin, Annick
  • Rezqita, Arlavinda
  • Hamid, Raad
  • Jahn, Marcus
OrganizationsLocationPeople

article

Advances in inorganic, polymer and composite electrolytes: Mechanisms of Lithium-ion transport and pathways to enhanced performance

  • Dermenci, Kamil Burak
  • Berecibar, Maitane
  • Yadav, Poonam
  • Van Mierlo, Joeri
  • Daems, Kato
Abstract

The growing demand for enhanced batteries with higher energy density and safety is pushing lithium-ion battery technology towards solid-state batteries. Replacing the liquid with a solid electrolyte significantly improves safety by removing the possibility of leaking flammable organic solvents. Solid electrolytes also enable the use of lithium metal as anode material to obtain battery cells with higher energy density. This review summarizes the classification of all three state-of-the-art solid electrolyte types (inorganic, polymer and composite solid electrolytes) and their governing lithium ion transport mechanisms. Nevertheless, to make solid-state batteries applicable, improvements in ionic conductivity of the solid electrolyte, low electrode-electrolyte interfacial resistance and high compatibility of the solid electrolyte with the electrodes are required. This review paper discusses improvement strategies for solid electrolytes to achieve high ionic conductivity, good flexibility, and high electrode compatibility. Enhanced ionic conductivity can be obtained by suppressing the polymer phase's crystallization (e.g., copolymerization, inorganic fillers, adjusting polymer matrix) and optimizing the physicochemical parameters and the surface of the inorganic phase. Interfacial stability can be improved by using multilayered electrolytes or applying coatings and passivation layers on electrolyte or electrode particles.

Topics
  • density
  • impedance spectroscopy
  • surface
  • polymer
  • energy density
  • phase
  • composite
  • Lithium
  • crystallization