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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Hansen, Karin Vels

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (21/21 displayed)

  • 2021Short-term strong cathodic polarization of Ni/YSZ and Pt/YSZcitations
  • 2019Influence of sintering profile on the microstructure and electronic transport properties of Sr(Ti,Nb)O3 tapes for solid oxide cell applicationscitations
  • 2019Probe electrode study of cathodically polarized PtIr-YSZ interfaces6citations
  • 2017Dynamic and Impure Perovskite Structured Metal Oxide Surfaces2citations
  • 2016Effects of strong cathodic polarization of the Ni-YSZ interface25citations
  • 2016New Hypothesis for SOFC Ceramic Oxygen Electrode Mechanisms4citations
  • 2015Environmental TEM study of the dynamic nanoscaled morphology of NiO/YSZ during reduction22citations
  • 2015Need for In Operando Characterization of Electrochemical Interface Featurescitations
  • 2015Dynamic behavior of impurities and native components in model LSM microelectrodes on YSZ6citations
  • 2014NiO/YSZ Reduction for SOFC/SOEC Studied In Situ by Environmental Transmission Electron Microscopy6citations
  • 2014In situ surface reduction of a NiO-YSZ-alumina composite using scanning probe microscopy9citations
  • 2013Oxygen Electrode Kinetics and Surface Composition of Dense (La0.75Sr0.25)0.95MnO3 on YSZ10citations
  • 2013Electrochemical reduction of NiO in a composite electrode4citations
  • 2013Oxygen Electrode Kinetics and Surface Composition of Dense (La 0.75 Sr 0.25 ) 0.95 MnO 3 on YSZ10citations
  • 2012Composite Sr- and V-doped LaCrO 3 /YSZ sensor electrode operating at low oxygen levels13citations
  • 2012Fundamental Material Properties Underlying Solid Oxide Electrochemistrycitations
  • 2012Composite Sr- and V-doped LaCrO3/YSZ sensor electrode operating at low oxygen levels13citations
  • 2010Quantitative data analysis methods for 3D microstructure characterization of Solid Oxide Cellscitations
  • 2010High Performance Fe-Co Based SOFC Cathodes12citations
  • 2008Effects of trace elements at the Ni/ScYSZ interface in a model solid oxide fuel cell anode25citations
  • 2001Microstructural and chemical changes at the Ni/YSZ interface58citations

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Chart of shared publication
Balasubramanian, Vignesh
1 / 4 shared
Kreka, Kosova
2 / 5 shared
Jacobsen, Torben
13 / 22 shared
Blennow, P.
1 / 4 shared
Mogensen, Mogens Bjerg
15 / 111 shared
Agersted, Karsten
3 / 29 shared
Sudireddy, Bhaskar Reddy
1 / 41 shared
Norrman, Kion
6 / 40 shared
Traulsen, Marie Lund
2 / 6 shared
Simonsen, Søren Bredmose
3 / 26 shared
Chen, Ming
1 / 29 shared
Thydén, Karl Tor Sune
2 / 20 shared
Koch, Søren
1 / 4 shared
Chatzichristodoulou, Christodoulos
2 / 37 shared
Kammer Hansen, Kent
2 / 26 shared
Jacobsen, Torben Krogsdal
1 / 1 shared
Hauch, Anne
1 / 15 shared
Graves, Christopher R.
1 / 25 shared
Wagner, Jakob Birkedal
2 / 68 shared
Hansen, Thomas Willum
2 / 55 shared
Kuhn, Luise Theil
3 / 30 shared
Holtappels, Peter
2 / 28 shared
Wu, Yuehua
3 / 3 shared
Hu, Qiang
1 / 8 shared
Lund, Anders
2 / 2 shared
Larsen, Rasmus
1 / 11 shared
Lassen, Niels Christian Krieger
1 / 1 shared
Jørgensen, Peter Stanley
1 / 23 shared
Wallenberg, Reine
1 / 34 shared
Bowen, Jacob R.
1 / 22 shared
Schmidt, Michael Stenbæk
1 / 8 shared
Primdahl, Søren
1 / 3 shared
Chorkendorff, Ib
1 / 97 shared
Chart of publication period
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Co-Authors (by relevance)

  • Balasubramanian, Vignesh
  • Kreka, Kosova
  • Jacobsen, Torben
  • Blennow, P.
  • Mogensen, Mogens Bjerg
  • Agersted, Karsten
  • Sudireddy, Bhaskar Reddy
  • Norrman, Kion
  • Traulsen, Marie Lund
  • Simonsen, Søren Bredmose
  • Chen, Ming
  • Thydén, Karl Tor Sune
  • Koch, Søren
  • Chatzichristodoulou, Christodoulos
  • Kammer Hansen, Kent
  • Jacobsen, Torben Krogsdal
  • Hauch, Anne
  • Graves, Christopher R.
  • Wagner, Jakob Birkedal
  • Hansen, Thomas Willum
  • Kuhn, Luise Theil
  • Holtappels, Peter
  • Wu, Yuehua
  • Hu, Qiang
  • Lund, Anders
  • Larsen, Rasmus
  • Lassen, Niels Christian Krieger
  • Jørgensen, Peter Stanley
  • Wallenberg, Reine
  • Bowen, Jacob R.
  • Schmidt, Michael Stenbæk
  • Primdahl, Søren
  • Chorkendorff, Ib
OrganizationsLocationPeople

document

Fundamental Material Properties Underlying Solid Oxide Electrochemistry

  • Holtappels, Peter
  • Hansen, Karin Vels
  • Mogensen, Mogens Bjerg
  • Jacobsen, Torben
Abstract

The concept of solid oxide electrochemistry, which we understand as the electrochemistry of cells based on oxide ion conducting electrolytes of non-stoichiometric metal oxides, is briefly described. The electrodes usually also contain ceramics. The chemical reactants are in gas phase, and the electrochemical reactions take place at elevated temperatures from 300 and up to 1000 C. This has as consequence that the region around the threephase- boundary (TPB), where the electron conducting electrode, the electrolyte and the gas phase reactants meet, is the region where the electrochemical processes take place. The length of the TPB is a key factor even though the width and depth of the zone, in which the rate limiting reactions take place, may vary depending of the degree of the electrode materials ability to conduct both electrons and ions, i.e. the TPB zone volume depends on how good a mixed ionic and electronic conductor (MIEC) the electrode is. Selected examples of literature studies of specific electrodes in solid oxide cells (SOC) are discussed. The reported effects of impurities - both impurities in the electrode materials and in the gases – point to high reactivity and mobility of materials in the TPB region. Also, segregations to the surfaces and interfaces of the electrode materials, which may affect the electrode reaction mechanism, are very dependent on the exact history of fabrication and operation. The positive effects of even small concentrations of nanoparticles in the electrodes may be interpreted as due to changes in the local chemistry of the three phase boundary (TPB) at which the electrochemical reaction take place. Thus it is perceivable that very different kinetics are observed for electrodes that are nominally equal, but fabricated and tested in different places with slightly different procedures using raw materials of slightly different compositions and different content of impurities. Further, attempts of quantitative general description of impedance and i-V relations, such as the simple Butler-Volmer equation, are discussed. We point out that such a simple description is not applicable for composite porous electrodes, and we claim that even in the case of simple model electrodes no clear evidences of charge transfer limitations following Butler- Volmer have been reported. Thus, we find overall that the large differences in the literature reports indicate that no universal truth such as “this is the rate limiting step of H2 oxidation in a Ni-zirconia cermet electrode...” will ever be found because the actual electrode properties are so dependent on the fabrication and operation history of the electrode. This does not mean, however, that deep knowledge of mechanisms of specific SOC electrodes is not useful. On the contrary, this may be very helpful in the development of SOCs.

Topics
  • nanoparticle
  • porous
  • impedance spectroscopy
  • surface
  • mobility
  • composite
  • ceramic
  • gas phase
  • phase boundary