A novel multi-component lead-free (1−x)BF–xBT–0.01(BNT–20BKT) piezoelectric ceramic exhibits excellent high-temperature piezoelectric properties and thermal stability

Abstract

This paper uses the conventional solid-state reaction method to prepare (1−x)BiFeO3xBaTiO3–0.01[0.8(Bi0.5Na0.5)TiO3–0.2(Bi0.5K0.5)TiO3]-(referred to as (1−x)BF–xBT–0.01(BNT–20BKT), 0.27 ≤ x ≤ 0.35). The influence of BaTiO3 content on the phase structure, dielectric properties, and piezoelectric properties of the BF–BT–BNT–BKT ceramics was systematically investigated. The XRD results indicate that with increasing BaTiO3 content, the material undergoes a composition-induced phase transition from the rhombohedral phase (R) to the pseudocubic phase (PC). Within the composition range 0.27 ≤ x ≤ 0.31, a metamorphic phase boundary (MPB) forms where the R phase and PC phase coexist. In situ d33 testing results indicate that at x = 0.31, an ultra-high piezoelectric property of 687.8 pC N−1 was achieved at a real-time depolarisation temperature (Tdr) of 381.8 °C, reflecting the ceramic's real-time piezoelectric properties and exceptional high-temperature stability. Transmission electron microscopy results indicate that nanodomains and polar nanodomains play a crucial role in enhancing the piezoelectric response. This study provides novel insights and experimental references for the composition design and phase structure regulation of high-performance lead-free piezoelectric ceramics.

Graphical abstract: A novel multi-component lead-free (1−x)BF–xBT–0.01(BNT–20BKT) piezoelectric ceramic exhibits excellent high-temperature piezoelectric properties and thermal stability

Article information

Article type
Paper
Submitted
19 Jan 2026
Accepted
13 Apr 2026
First published
27 Apr 2026

J. Mater. Chem. C, 2026, Advance Article

A novel multi-component lead-free (1−x)BF–xBT–0.01(BNT–20BKT) piezoelectric ceramic exhibits excellent high-temperature piezoelectric properties and thermal stability

Q. Luo, H. Yang, X. Wang, J. Zhu, H. Tan, H. Zhang, L. Yang, Q. Chen and S. Guan, J. Mater. Chem. C, 2026, Advance Article , DOI: 10.1039/D6TC00181E

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