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Journal article

Thermochemical stability of zirconia-titanium nitride as mixed ionic-electronic composites

From

Instituto de Pesquisas Energéticas e Nucleares1

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

Universidade Federal do ABC3

Universidade de São Paulo4

Dense zirconia (8% molar yttria-stabilized ZrO2)-titanium nitride (TiN) composites are fabricated to obtain mixed ionic-electronic conducting ceramic systems with high degree of electronic and thermal conductivity. The composites are consolidated by spark plasma sintering (SPS), starting from pure powders of the pristine phases mixed in different ratios (TiN = 25, 50, 75 wt%).

A careful optimization of the SPS conditions allows producing highly dense samples with no reaction between the phases or degradation by oxidation, thus maintaining the chemical integrity of the two phases. For all the composites, high electrical conductivity is attained. Samples exhibit metallic behavior, showing an unexpected percolation of TiN in the YSZ matrix for volume fraction ≤ 25 wt% (27 vol%).

Chemical degradation and electrical properties of the compounds were monitored under oxidative (air) and inert (Ar) atmosphere at high temperatures. The oxidation kinetics of the nitride phase was inhibited by the microstructure of the composite. The electrical properties of such composites were explored at high temperature to evaluate its application in electrochemical devices.

As results, it is shown that electrical transport properties of the composite can be tuned by both the relative volume fraction of phases and controlled oxidative treatments. Adjusting such parameters different electric behaviors were observed ranging from predominant electronic conductors, to temperature-independent resistivity, and semiconducting.

Language: English
Year: 2018
Pages: 8440-8446
ISSN: 18733956 and 02728842
Types: Journal article
DOI: 10.1016/j.ceramint.2018.02.039
ORCIDs: Esposito, V.

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