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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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (19/19 displayed)

  • 2024Functional LSMO foams for magneto-caloric applicationscitations
  • 2024Review of Moiré superconductivity and application of the Roeser-Huber formulacitations
  • 2023The Paramagnetic Meissner Effect (PME) in Metallic Superconductors7citations
  • 2022Microstructural Parameters for Modelling of Superconducting Foams4citations
  • 2022Superconductivity 2022citations
  • 2021Microstructure analysis of electrospun La0.8Sr0.2MnO3 nanowires using electron microscopy and electron backscatter diffraction (EBSD)citations
  • 2021Magnetic phases in superconducting, polycrystalline bulk FeSe samplescitations
  • 2021Magnetic phases in superconducting, polycrystalline bulk FeSe samples19citations
  • 2020On the origin of the sharp, low-field pinning force peaks in MgB2 superconductors11citations
  • 2020Magnetic phases in superconducting, polycrystalline bulk FeSe samplescitations
  • 2020Microstructure and Fluctuation-Induced Conductivity Analysis of Bi2Sr2CaCu2O8+δ (Bi-2212) Nanowire Fabricscitations
  • 2020Relation between crystal structure and transition temperature of superconducting metals and alloyscitations
  • 2020Microstructure and paramagnetic Meissner effect of YBa2Cu3Oy nanowire networks9citations
  • 2019Electron Irradiation of Polycrystalline Bulk FeSe Superconductorscitations
  • 2019Electron Irradiation of Polycrystalline Bulk FeSe Superconductorscitations
  • 2019Exploring the flux pinning performance of bulk FeSe by electron irradiationcitations
  • 2019Exploring the flux pinning performance of bulk FeSe by electron irradiationcitations
  • 2018Giant Enhancement of Magnetostrictive Response in Directionally-Solidified Fe83Ga17Erx Compoundscitations
  • 2013Microstructural Analysis of Electrochemical Coated Open-Cell Metal Foams by EBSD and Nanoindentation31citations

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Chart of shared publication
Schmauch, Jörg
3 / 11 shared
Koblischka, Michael R.
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Půst, Ladislav
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Hauet, Thomas
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Koblischka, Michael Rudolf
5 / 6 shared
Chang, Crosby-Soon
1 / 1 shared
Nouailhetas, Quentin
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Berger, Kévin
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Douine, Bruno
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Gokhfeld, Denis
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Hajiri, Ghazi
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Zeng, Xianlin
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Slimani, Yassine
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Motz, Christian
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Schäfer, Florian
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Naik, S. Pavan Kumar
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Koblischka, Michael, Rudolf
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Ogino, Hiraku
1 / 1 shared
Hannachi, Essia
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Chang, Crosby, S.
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Murakami, Masato
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Wiederhold, Alex
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Zeng, Xian Lin
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Roth, Susanne
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Fasoulas, Stefanos
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Karwoth, Thomas
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Zadorosny, R.
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Koblischka, M. R.
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Carvalho, C. L.
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Pessoa, A. L.
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Beek, Cornelis Jacominus Van Der
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Koblischka, Michael
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Miryala, Muralidhar
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Harris, Vincent G.
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Jiang, Liping
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Barua, Radhika
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Chen, Yajie
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Taheri, Parisa
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Jung, Anne
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Diebels, Stefan
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Barnoush, Afrooz
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Co-Authors (by relevance)

  • Schmauch, Jörg
  • Koblischka, Michael R.
  • Půst, Ladislav
  • Hauet, Thomas
  • Koblischka, Michael Rudolf
  • Chang, Crosby-Soon
  • Nouailhetas, Quentin
  • Berger, Kévin
  • Douine, Bruno
  • Gokhfeld, Denis
  • Hajiri, Ghazi
  • Zeng, Xianlin
  • Slimani, Yassine
  • Motz, Christian
  • Schäfer, Florian
  • Naik, S. Pavan Kumar
  • Koblischka, Michael, Rudolf
  • Ogino, Hiraku
  • Hannachi, Essia
  • Chang, Crosby, S.
  • Murakami, Masato
  • Wiederhold, Alex
  • Zeng, Xian Lin
  • Roth, Susanne
  • Fasoulas, Stefanos
  • Karwoth, Thomas
  • Zadorosny, R.
  • Koblischka, M. R.
  • Carvalho, C. L.
  • Pessoa, A. L.
  • Beek, Cornelis Jacominus Van Der
  • Koblischka, Michael
  • Miryala, Muralidhar
  • Harris, Vincent G.
  • Jiang, Liping
  • Barua, Radhika
  • Chen, Yajie
  • Taheri, Parisa
  • Jung, Anne
  • Diebels, Stefan
  • Barnoush, Afrooz
OrganizationsLocationPeople

document

Magnetic phases in superconducting, polycrystalline bulk FeSe samples

  • Nouailhetas, Quentin
  • Slimani, Yassine
  • Berger, Kévin
  • Douine, Bruno
  • Motz, Christian
  • Koblischka, Michael R.
  • Schäfer, Florian
  • Koblischka-Veneva, Anjela
Abstract

The FeSe compound is the simplest high-temperature superconductor (HTSc) possible, and relatively cheap, not containing any rare-earth material. Although the transition temperature, Tc, is just below 10 K, the upper critical fields are comparable with other HTSc. Preparing FeSe using solid-state sintering yields samples exhibiting strong ferromagnetic hysteresis loops (MHLs), and the superconducting contribution is only visible after subtracting MHLs from above Tc. Due to the complicated phase diagram, the samples are a mixture of several phases, the superconducting β-FeSe, and the non-superconducting δ-FeSe and γ-FeSe. Furthermore, antiferromagnetic Fe7Se8 and ferromagnetic α-Fe may be contained, depending directly on the Se loss during the sintering process. Here, we show MHLs measured up to ±7 T and determine the magnetic characteristics, together with the amount of superconductivity determined from M(T) measurements. We also performed a thorough analysis of the microstructures in order to establish a relation between microstructure and the resulting sample properties.

Topics
  • impedance spectroscopy
  • compound
  • phase
  • phase diagram
  • sintering
  • superconductivity
  • superconductivity