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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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Naji, M.
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Chatzichristodoulou, Christodoulos

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Technical University of Denmark

in Cooperation with on an Cooperation-Score of 37%

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Publications (37/37 displayed)

  • 2024Operando Electron Microscopy and Impedance Analysis of Solid Oxide Electrolysis and Fuel Cells7citations
  • 2021Development of high-temperature electrochemical TEM and its application on solid oxide electrolysis cellscitations
  • 2021Development of high-temperature electrochemical TEM and its application on solid oxide electrolysis cellscitations
  • 2020Polysulfone-polyvinylpyrrolidone blend membranes as electrolytes in alkaline water electrolysis72citations
  • 2020(Invited) Advanced Alkaline Electrolysis Cells for the Production of Sustainable Fuels and Chemicalscitations
  • 2017Oxygen transport properties of tubular Ce 0.9 Gd 0.1 O 1.95 -La 0.6 Sr 0.4 FeO 3−d composite asymmetric oxygen permeation membranes supported on magnesium oxide14citations
  • 2017Ionic/Electronic Conductivity, Thermal/Chemical Expansion and Oxygen Permeation in Pr and Gd Co-Doped Ceria PrxGd0.1Ce0.9-xO1.95-δ29citations
  • 2017Chemical and Electrochemical Properties of La0.58Sr0.4Fe0.8Co0.2O3-δ (LSCF) Thin Films upon Oxygen Reduction and Evolution Reactionscitations
  • 2017Oxygen transport properties of tubular Ce0.9Gd0.1O1.95-La0.6Sr0.4FeO3−d composite asymmetric oxygen permeation membranes supported on magnesium oxide14citations
  • 2016Relaxation of stresses during reduction of anode supported SOFCscitations
  • 2016High Temperature and Pressure Alkaline Electrochemical Reactor for Conversion of Power to Chemicalscitations
  • 2016Evolution of the electrochemical interface in high-temperature fuel cells and electrolysers662citations
  • 2016Design and optimization of porous ceramic supports for asymmetric ceria-based oxygen transport membranes31citations
  • 2016Design and optimization of porous ceramic supports for asymmetric ceria-based oxygen transport membranes31citations
  • 2016New Hypothesis for SOFC Ceramic Oxygen Electrode Mechanisms4citations
  • 2016High Temperature Alkaline Electrolysis Cells with Metal Foam Based Gas Diffusion Electrodes29citations
  • 2015Size of oxide vacancies in fluorite and perovskite structured oxides96citations
  • 2015Need for In Operando Characterization of Electrochemical Interface Featurescitations
  • 2015Kinetics of CO/CO 2 and H 2 /H 2 O reactions at Ni-based and ceria-based solid-oxide-cell electrodes24citations
  • 2014Composite Fe - BaCe0.2Zr0.6Y0.2O2.9 Anodes for Proton Conductor Fuel Cells6citations
  • 2014Composite Fe - BaCe 0.2 Zr 0.6 Y 0.2 O 2.9 Anodes for Proton Conductor Fuel Cells6citations
  • 2014Power to fuel using electrolysis and CO2 capturecitations
  • 2014TOF-SIMS characterization of impurity enrichment and redistribution in solid oxide electrolysis cells during operation13citations
  • 2014High performance and highly durable infiltrated cathodes using Pr-modified Ce0.9Gd0.1O1.95 backbonecitations
  • 2014High performance and highly durable infiltrated cathodes using Pr-modified Ce 0.9 Gd 0.1 O 1.95 backbonecitations
  • 2013Defect chemistry, thermomechanical and transport properties of (RE2−xSrx)0.98(Fe0.8Co0.2)1−yMgyO4−δ (RE = La, Pr)9citations
  • 2013Pressurized HxCyOz Cells at ca. 250 °C: Potential and Challengescitations
  • 2013Infiltration of ionic-, electronic- and mixed-conducting nano particles into La0.75Sr0.25MnO3–Y0.16Zr0.84O2 cathodes – A comparative study of performance enhancement and stability at different temperatures48citations
  • 2013High temperature and pressure alkaline electrolysiscitations
  • 2013Alkaline electrolysis cell at high temperature and pressure of 250 °C and 42 bar75citations
  • 2013Pressurized H x C y O z Cells at ca. 250 °C: Potential and Challengescitations
  • 2013Defect chemistry, thermomechanical and transport properties of (RE 2 - x Sr x ) 0.98 (Fe 0.8 Co 0.2 ) 1 - y Mg y O 4 - δ (RE = La, Pr)9citations
  • 2013Infiltration of ionic-, electronic- and mixed-conducting nano particles into La 0.75 Sr 0.25 MnO 3 –Y 0.16 Zr 0.84 O 2 cathodes – A comparative study of performance enhancement and stability at different temperatures48citations
  • 2012Characterization of impregnated GDC nano structures and their functionality in LSM based cathodes42citations
  • 2011Evaluation of thin film ceria membranes for syngas membrane reactors—Preparation, characterization and testing46citations
  • 2010Oxygen Nonstoichiometry and Defect Chemistry Modeling of Ce0.8Pr0.2O2-delta44citations
  • 2010Defect Chemistry and Thermomechanical Properties of Ce0.8PrxTb0.2-xO2-delta54citations

Places of action

Chart of shared publication
Mølhave, Kristian S.
2 / 18 shared
Simonsen, Søren Bredmose
3 / 26 shared
Chiabrera, Francesco Maria
1 / 11 shared
Ma, Zhongtao
3 / 3 shared
Dacayan, Waynah Lou
2 / 2 shared
Mølhave, Kristian Speranza
1 / 1 shared
Zhang, Wenjing
1 / 11 shared
Aili, David
1 / 16 shared
Kraglund, Mikkel Rykær
2 / 6 shared
Tavacoli, Joe
1 / 2 shared
Jensen, Jens Oluf
2 / 25 shared
Frandsen, Henrik Lund
3 / 66 shared
Gadea, Christophe
1 / 5 shared
Kiebach, Ragnar
1 / 13 shared
Pitscheider, Simon
2 / 3 shared
Seselj, Nedjeljko
1 / 3 shared
Mogensen, Mogens Bjerg
16 / 111 shared
Georgolamprou, Xanthi
1 / 3 shared
Gellrich, Florian
1 / 1 shared
Khajavi, Peyman
1 / 11 shared
Hendriksen, Peter Vang
15 / 119 shared
Kaiser, Andreas
6 / 57 shared
Bjørnetun Haugen, Astri
2 / 19 shared
Ovtar, Simona
2 / 11 shared
Gurauskis, Jonas
2 / 10 shared
Søgaard, Martin
6 / 42 shared
Cheng, Shiyang
1 / 1 shared
Chueh, William C.
1 / 4 shared
Hjelm, Johan
1 / 37 shared
Guan, Zixuan
1 / 1 shared
Chen, Di
1 / 2 shared
Machala, Michael
1 / 1 shared
Jacobsen, Torben
1 / 22 shared
Kwok, Kawai
1 / 12 shared
Jørgensen, Peter Stanley
1 / 23 shared
Irvine, John T. S.
1 / 44 shared
Graves, Christopher R.
4 / 25 shared
Verbraeken, Maarten C.
1 / 2 shared
Neagu, Dragos
1 / 34 shared
Foghmoes, Søren Preben Vagn
3 / 15 shared
Glasscock, Julie
3 / 11 shared
Esposito, Vincenzo
2 / 92 shared
Pećanac, G.
2 / 2 shared
Ni, De Wei
2 / 17 shared
Malzbender, J.
2 / 17 shared
Kothanda Ramachandran, Dhavanesan
1 / 7 shared
Ramachandran, Dhavanesan Kothanda
1 / 6 shared
Norrman, Kion
2 / 40 shared
Kammer Hansen, Kent
1 / 26 shared
Jacobsen, Torben Krogsdal
1 / 1 shared
Hansen, Karin Vels
2 / 21 shared
Hauch, Anne
1 / 15 shared
Allebrod, Frank
5 / 5 shared
Norby, Poul
1 / 34 shared
Holtappels, Peter
5 / 28 shared
Traulsen, Marie Lund
1 / 6 shared
Kuhn, Luise Theil
1 / 30 shared
Lapina, Alberto
2 / 4 shared
Ebbesen, Sune Dalgaard
2 / 6 shared
Sun, Xiufu
1 / 15 shared
Chen, Ming
1 / 29 shared
Kiebach, Wolff-Ragnar
4 / 38 shared
Samson, Alfred Junio
2 / 13 shared
Bonanos, Nikolaos
2 / 35 shared
Hagen, Anke
3 / 30 shared
Schönbeck, Christian
1 / 2 shared
Jabbar, Mohammed Hussain Abdul
1 / 3 shared
Vico, Federica
2 / 2 shared
Hallinder, Jonathan
2 / 2 shared
Klemensø, Trine
3 / 28 shared
Knöfel, Christina
2 / 3 shared
Bozza, Francesco
3 / 16 shared
Abdul Jabbar, Mohammed Hussain
1 / 5 shared
Schonbeck, C.
1 / 1 shared
Nielsen, Jimmy
1 / 14 shared
Ramousse, Severine
1 / 24 shared
Thydén, Karl Tor Sune
1 / 20 shared
Chart of publication period
2024
2021
2020
2017
2016
2015
2014
2013
2012
2011
2010

Co-Authors (by relevance)

  • Mølhave, Kristian S.
  • Simonsen, Søren Bredmose
  • Chiabrera, Francesco Maria
  • Ma, Zhongtao
  • Dacayan, Waynah Lou
  • Mølhave, Kristian Speranza
  • Zhang, Wenjing
  • Aili, David
  • Kraglund, Mikkel Rykær
  • Tavacoli, Joe
  • Jensen, Jens Oluf
  • Frandsen, Henrik Lund
  • Gadea, Christophe
  • Kiebach, Ragnar
  • Pitscheider, Simon
  • Seselj, Nedjeljko
  • Mogensen, Mogens Bjerg
  • Georgolamprou, Xanthi
  • Gellrich, Florian
  • Khajavi, Peyman
  • Hendriksen, Peter Vang
  • Kaiser, Andreas
  • Bjørnetun Haugen, Astri
  • Ovtar, Simona
  • Gurauskis, Jonas
  • Søgaard, Martin
  • Cheng, Shiyang
  • Chueh, William C.
  • Hjelm, Johan
  • Guan, Zixuan
  • Chen, Di
  • Machala, Michael
  • Jacobsen, Torben
  • Kwok, Kawai
  • Jørgensen, Peter Stanley
  • Irvine, John T. S.
  • Graves, Christopher R.
  • Verbraeken, Maarten C.
  • Neagu, Dragos
  • Foghmoes, Søren Preben Vagn
  • Glasscock, Julie
  • Esposito, Vincenzo
  • Pećanac, G.
  • Ni, De Wei
  • Malzbender, J.
  • Kothanda Ramachandran, Dhavanesan
  • Ramachandran, Dhavanesan Kothanda
  • Norrman, Kion
  • Kammer Hansen, Kent
  • Jacobsen, Torben Krogsdal
  • Hansen, Karin Vels
  • Hauch, Anne
  • Allebrod, Frank
  • Norby, Poul
  • Holtappels, Peter
  • Traulsen, Marie Lund
  • Kuhn, Luise Theil
  • Lapina, Alberto
  • Ebbesen, Sune Dalgaard
  • Sun, Xiufu
  • Chen, Ming
  • Kiebach, Wolff-Ragnar
  • Samson, Alfred Junio
  • Bonanos, Nikolaos
  • Hagen, Anke
  • Schönbeck, Christian
  • Jabbar, Mohammed Hussain Abdul
  • Vico, Federica
  • Hallinder, Jonathan
  • Klemensø, Trine
  • Knöfel, Christina
  • Bozza, Francesco
  • Abdul Jabbar, Mohammed Hussain
  • Schonbeck, C.
  • Nielsen, Jimmy
  • Ramousse, Severine
  • Thydén, Karl Tor Sune
OrganizationsLocationPeople

article

Need for In Operando Characterization of Electrochemical Interface Features

  • Chatzichristodoulou, Christodoulos
  • Holtappels, Peter
  • Hansen, Karin Vels
  • Mogensen, Mogens Bjerg
  • Traulsen, Marie Lund
  • Kuhn, Luise Theil
Abstract

It has proven particularly difficult to determine the electrode reaction mechanisms in high temperature solid oxide cells (SOCs) that convert gases. The literature is full of contradictory statements and apparently contradictory findings. Often the same type of electrochemical kinetics that apply to low temperature aqueous systems are assumed valid for SOCs, but in our opinion this has not been fruitful as they do not describe the experimental findings properly. Classical room temperature wet electrochemistry has experienced a huge progress in understanding of the electrode reaction mechanisms during the recent 2 decades. This progress has to a large extent been based on combination of electrochemical characterization and in situ and in operando and in situ surface analysis techniques, which so far have been less developed for high temperature electrochemistry above 300 °C.<br/>In spite that such techniques have only recently started becoming available for SOC electrochemistry, they are strongly needed. The high temperature solid-solid and solid-gas interfaces tend to change a lot over time due to segregation of electrolyte and electrode constituents and unavoidable trace impurities on a level of few ppm. Furthermore, a porous electrode for solid-gas reactions has three phase boundaries (TPBs), where the electrolyte, the electrode and the gaseous reactants meet. The current density will be concentrated around the TPB. Also, the TPB seems particularly prone to collect trace impurities and minority components, probably because the TPB zone has many sites with higher free energy relative to the rest of the electrode and electrolyte surface. An example of the segregation is the enrichment of yttria to the yttria stabilized zirconia (YSZ – the common SOFC electrolyte) surface, which takes place during a few hours at operation temperature. Furthermore, most often a silica rich layer will form on top of the yttria enriched layer. These “interphase” (not interface) layers may grow and change over time and with changes in temperature and other test conditions. Such segregation seems to be equally pronounced for surfaces and interfaces of the popular perovskite structured metal oxide electrodes such as lanthanum strontium manganites or cobaltites on which a several nanometer thick skin of strontium rich oxide forms already during cell preparation and it is believed that this is changing significantly during electrode operation. However, our knowledge about the driving forces for and the kinetics of the formation of the interphases is very superficial.<br/>Thus, there is a strong need for in operando techniques that can characterize and monitor the development of the mentioned features as function of time and changing experimental conditions with respect to electrical, structural and chemical properties at the nano-scale. Going through the various known techniques, it becomes clear that there are not sufficient in operando techniques available to make a comprehensive electrode characterization, and therefore in situ techniques are usually employed, in which at least one of the operation conditions are fulfilled, e.g. temperature but not atmosphere is matching relevant operation conditions. Finally, our analysis of already published results points out the advantage of combining several different techniques such as electrochemical impedance spectroscopy with in operando scanning probe microscopy and surface sensitive chemical analysis methods. Examples of results will be presented.

Topics
  • porous
  • density
  • perovskite
  • impedance spectroscopy
  • surface
  • phase
  • laser emission spectroscopy
  • Strontium
  • Lanthanum
  • current density
  • scanning probe microscopy