Charakterisierung und Modellentwicklung von Natur und Funktionalität der Kathoden/Elektrolyt-Grenzfläche von Hochtemperatur-Brennstoffzellen (SOFC)

Solid oxide fuel cells (SOFC) achieve high efficiencies, the lower the internal electrochemical losses are. This work investigates insulating secondary phases at the cathode/electrolyte interface that are formed during fabrication. Full cells and model systems are electrochemically characterized, an...

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Bibliographic Details
Main Author: Szász, Julian Tibor (auth)
Format: Electronic Book Chapter
Published: KIT Scientific Publishing 2019
Series:Schriften des Instituts für Angewandte Materialien - Werkstoffe der Elektrotechnik, Karlsruher Institut für Technologie / Institut für Angewandte Materialien - Werkstoffe der Elektrotechnik
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245 1 0 |a Charakterisierung und Modellentwicklung von Natur und Funktionalität der Kathoden/Elektrolyt-Grenzfläche von Hochtemperatur-Brennstoffzellen (SOFC) 
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520 |a Solid oxide fuel cells (SOFC) achieve high efficiencies, the lower the internal electrochemical losses are. This work investigates insulating secondary phases at the cathode/electrolyte interface that are formed during fabrication. Full cells and model systems are electrochemically characterized, analyzed by electron microscopy and reconstructed by tomography. A FEM model reveals performance limiting factors. As a result, an optimized production routine is proposed. 
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653 |a elektrochemische Impedanzspektroskopie 
653 |a electrochemical impedance spectroscopy 
653 |a FEM-Modellierung 
653 |a korrelative Tomographie 
653 |a secondary phase identification 
653 |a solid oxide fuel cell (SOFC) 
653 |a Zweitphasenidentifikation 
653 |a correlative tomography 
653 |a FEM modeling 
653 |a Hochtemperatur-Brennstoffzelle (SOFC) 
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