Issue 46, 2024

Ba7Nb4−xCexMoO20: structural and electrical property studies of a novel NTC thermal ceramic

Abstract

The hexagonal perovskite oxide Ba7Nb4MoO20 is widely studied in chemical devices due to its oxide-ionic conductivity at high temperatures. Ce4+ doping into Ba7Nb4MoO20 was undertaken to optimize small polariton conduction and oxide ionic conductivity simultaneously. Ba7Nb4−xCexMoO20 materials were synthesized via solid phase sintering. XRD patterns indicate a single phase, SEM scans reveal increased densification with higher Ce doping concentrations, and the resistance temperature range expands from 400–900 °C to 300–1100 °C. Hall tests confirm that Ba7Nb4−xCexMoO20 carriers are electrons, indicating n-type conductivity. Nyquist plots illustrate that grain boundary resistance governs complex impedance, which shows gradual oxide ionic conductivity enhancement with rising temperature. The aging drift rate decreases to about 1%, suggesting good stability of Ba7Nb4−xCexMoO20 ceramics. These findings propose a feasible doping strategy for enhancing hexagonal perovskite oxide ceramics.

Graphical abstract: Ba7Nb4−xCexMoO20: structural and electrical property studies of a novel NTC thermal ceramic

Article information

Article type
Paper
Submitted
13 Aug 2024
Accepted
09 Oct 2024
First published
21 Oct 2024

J. Mater. Chem. C, 2024,12, 18819-18828

Ba7Nb4−xCexMoO20: structural and electrical property studies of a novel NTC thermal ceramic

J. Li, W. Deng, Y. Xue, N. Ai, K. Ding, X. Chen, W. Meng, P. Zhao, A. Chang and Y. Xie, J. Mater. Chem. C, 2024, 12, 18819 DOI: 10.1039/D4TC03449J

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