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Performance enhancement and structural defect chemistry regulation of Bi3TiNbO9 high-temperature piezoelectric ceramics by (W, Mn) co-doping

  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

A novel design strategy for lead-free high-temperature piezoelectric ceramics is proposed in this study, aiming to optimize the piezoelectric performance, dielectric loss, and high-temperature stability of the Aurivillius system. By introducing (W3/4Mn1/4) co-dopants at the B-site, the local octahedral structure and defect chemistry of Bi3TiNbO9 were regulated, leading to synergistic enhancement of overall performance. The Curie temperatures of all doped samples were maintained above 900 °C. Among them, the x = 0.04 (denoted as BTNO-4WMn) composition exhibited the lowest dielectric loss (0.105) and a Curie temperature of 907.6 °C. Moreover, its d33 value reached 12.7 pC/N, approximately five times that of the undoped sample, and about 93% of the initial d33 was retained after annealing at 850 °C for 2 h, demonstrating excellent thermal stability. Impedance spectroscopy and activation-energy analysis further revealed a higher carrier migration barrier and more strongly suppressed high-temperature conduction in BTNO-4WMn. These results suggest that BTNO-4WMn is a promising candidate for high-temperature piezoelectric applications.

Original languageEnglish
JournalCeramics International
DOIs
StateAccepted/In press - 2026

Keywords

  • Aurivillius structure
  • High-temperature piezoelectric ceramics
  • High-temperature stability
  • Piezoelectric properties
  • Structural regulation

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