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Journal article

Permeability, strength and electrochemical studies on ceramic multilayers for solid-state electrochemical cells

In Heliyon 2017, Volume 3, Issue 8, pp. e00371
From

Department of Energy Conversion and Storage, Technical University of Denmark1

Ceramic Engineering & Science, Department of Energy Conversion and Storage, Technical University of Denmark2

Mixed Conductors, Department of Energy Conversion and Storage, Technical University of Denmark3

An electrochemical reactor can be used to purify flue gasses. Such a reactor can be a multilayer structure consisting of alternating layers of porous electrodes and electrolytes (a porous cell stack). In this work optimization of such a unit has been done by changing the pore former composition and the electrode powder pre-treatment.

The effect on permeability, mechanical strength and electrochemical behavior was studied in this work. The effects were evaluated by measuring the pressure difference over the samples in relation to the flow through the sample, by the ball on ring method and by electrochemical impedance spectroscopy in air at temperatures between 300 and 450 °C.

The resulting structures were also evaluated with scanning electron microscopy.The work showed a dependence on the pore former composition and electrode powder pre-treatment resulting in variations in porosity, strength and flow resistance. A higher porosity gives a lower backpressure. The electrochemical performance shows that both thickness and amount of pore former in the electrolyte is important, but almost no dependence of electrode composition on the polarization resistances within the tested compositions.

Language: English
Publisher: Elsevier
Year: 2017
Pages: e00371
ISSN: 24058440
Types: Journal article
DOI: 10.1016/j.heliyon.2017.e00371
ORCIDs: Charlas, Benoit , Stamate, Eugen and Kammer Hansen, Kent

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