Investigation of electric field-induced phase transitions in unfilled tungsten bronze relaxor ceramics designed by the high entropy concept

Bowen Wang, Vladimir V. Koval, Giuseppe Viola, Mirva Eriksson, Zixuan Wu, Michael J. Reece, David Hall, Ge Wang*, Haixue Yan

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Electric field-induced phase transition behaviour, extensively studied in perovskite-structured ceramics, has not been previously reported in unfilled tetragonal tungsten bronze (TTB) structured ceramics. In this work, we present the first investigation of electric field-induced phase transitions in high-entropy designed unfilled TTB structured Ca0.25Sr0.25Ba0.25Pb0.25Nb2O6 (CSBP) ceramics using dielectric and ferroelectric characterization techniques. The findings reveal that field-induced polarization in the CSBP ceramics evolve from irreversible to reversible with increasing temperature. Furthermore, strong relaxor ferroelectric behaviour was observed in the ceramics, attributed to the A-site cation disorders in the unfilled TTB structure, facilitated by the high entropy design. The absence of non-180° domain switching was indicated by microstructural observations and analysis of the strain-electric field (S-E) response. In-situ poling synchrotron studies and experimental S-E response measurements revealed an electrostrictive behaviour characterized by an electrostrain not originating from macroscopic structural transformations or long-range domain switching but more likely contributed by the reorientation of polar nanoregions. The results obtained provide a foundation for future studies investigating the electric field-induced phase transition behaviour and domain switching behaviour in the unfilled TTB structured ceramics.
Original languageEnglish
Article number120593
JournalActa Materialia
Volume284
Early online date25 Nov 2024
DOIs
Publication statusPublished - 1 Jan 2025

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