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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Kontogeorgis, Georgios M.

  • Google
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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (18/18 displayed)

  • 2024Composition-dependence of relative static permittivity in ePPC-SAFT for mixed-solvent alkali halides6citations
  • 2024Investigation of the Alcohols and Water Hydrogen Bonding Structure via Monomer Fraction Studies3citations
  • 2024The Connection between the Debye and Güntelberg Charging Processes and the Importance of Relative Permittivity: The Ionic Cloud Charging Process4citations
  • 2023On the estimation of equivalent conductivity of electrolyte solutions; The effect of relative static permittivity and viscosity12citations
  • 2023Comparisons of equation of state models for electrolytes: e-CPA and e-PPC-SAFT12citations
  • 2023Comparison of models for the relative static permittivity with the e-CPA equation of state11citations
  • 2023How to account for the concentration dependency of relative permittivity in the Debye–Hückel and Born equations14citations
  • 2023Extension of the eSAFT-VR Mie Equation of State from aqueous to non-aqueous electrolyte solutions20citations
  • 2022Importance of the Relative Static Permittivity in electrolyte SAFT-VR Mie Equations of State30citations
  • 2022The true Hückel equation for electrolyte solutions and its relation with the Born term11citations
  • 2022Self-stratification studies in waterborne epoxy-silicone systems5citations
  • 2022Self-stratification studies in waterborne epoxy-silicone systems5citations
  • 2018A Multi-stage and Multi-level Computer Aided Framework for Sustainable Process Intensification5citations
  • 2013Modeling of Dielectric Properties of Aqueous Salt Solutions with an Equation of State90citations
  • 2013Modeling of dielectric properties of complex fluids with an equation of state66citations
  • 2012Comparison of the Debye–Hückel and the Mean Spherical Approximation Theories for Electrolyte Solutions90citations
  • 2007Adhesion between coating layers based on epoxy and silicone31citations
  • 2004Chemical Product Design: A new challenge of applied thermodynamics16citations

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Chart of shared publication
De Hemptinne, Jean-Charles
1 / 2 shared
Yang, Fufang
1 / 1 shared
Tsochantaris, Evangelos
1 / 1 shared
Liang, Xiaodong
8 / 9 shared
Silva, Gabriel M.
3 / 3 shared
Maribo-Mogensen, Bjørn
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Naseri, Saman
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Hemptinne, Jean-Charles De
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Von Solms, Nicolas
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Olsen, Martin Due
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Economou, Ioannis G.
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Novak, Nefeli Effrosyni
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Castier, Marcelo
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Walker, Pierre J.
1 / 1 shared
Bi, Huichao
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Weinell, Claus Erik
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Dam-Johansen, Kim
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Jhamb, Spardha
2 / 2 shared
Erik Weinell, Claus
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Woodley, John
1 / 3 shared
Garg, Nipun
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Gani, Rafiqul
1 / 4 shared
Thomsen, Kaj
3 / 7 shared
Grønlund, Martin
1 / 1 shared
Kiil, Søren
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Svendsen, Jacob R.
1 / 1 shared
Abildskov, Jens
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Chart of publication period
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2023
2022
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Co-Authors (by relevance)

  • De Hemptinne, Jean-Charles
  • Yang, Fufang
  • Tsochantaris, Evangelos
  • Liang, Xiaodong
  • Silva, Gabriel M.
  • Maribo-Mogensen, Bjørn
  • Naseri, Saman
  • Hemptinne, Jean-Charles De
  • Von Solms, Nicolas
  • Olsen, Martin Due
  • Economou, Ioannis G.
  • Novak, Nefeli Effrosyni
  • Castier, Marcelo
  • Walker, Pierre J.
  • Bi, Huichao
  • Weinell, Claus Erik
  • Dam-Johansen, Kim
  • Jhamb, Spardha
  • Erik Weinell, Claus
  • Woodley, John
  • Garg, Nipun
  • Gani, Rafiqul
  • Thomsen, Kaj
  • Grønlund, Martin
  • Kiil, Søren
  • Svendsen, Jacob R.
  • Abildskov, Jens
OrganizationsLocationPeople

article

Modeling of Dielectric Properties of Aqueous Salt Solutions with an Equation of State

  • Maribo-Mogensen, Bjørn
  • Kontogeorgis, Georgios M.
  • Thomsen, Kaj
Abstract

The static permittivity is the most important physical property for thermodynamic models that account for the electrostatic interactions between ions. The measured static permittivity in mixtures containing electrolytes is reduced due to kinetic depolarization and reorientation of the dipoles in the electrical field surrounding ions. Kinetic depolarization may explain 25–75% of the observed decrease in the permittivity of solutions containing salts, but since this is a dynamic property, this effect should not be included in the thermodynamic modeling of electrolytes. Kinetic depolarization has, however, been ignored in relation to thermodynamic modeling, and authors have either neglected the effect of salts on permittivity or used empirical correlations fitted to the measured static permittivity, leading to an overestimation of the reduction in the thermodynamic static permittivity. We present a new methodology for obtaining the static permittivity over wide ranges of temperatures, pressures, and compositions for use within an equation of state for mixed solvents containing salts. The static permittivity is calculated from a new extension of the framework developed by Onsager, Kirkwood, and Fröhlich to associating mixtures. Wertheim’s association model as formulated in the statistical associating fluid theory is used to account for hydrogen-bonding molecules and ion–solvent association. Finally, we compare the Debye–Hückel Helmholtz energy obtained using an empirical model with the new physical model and show that the empirical models may introduce unphysical behavior in the equation of state.

Topics
  • impedance spectroscopy
  • theory
  • Hydrogen