Achieving ultrastable piezoelectric response over a wide temperature range in BF–BT ceramics via phase-domain-defect regulation

M Mingyue Mo (College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,) J Jiaxin Sun J Jinjie Zhan (College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,) F Fuyu Xie (College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,) R Rui Tang (Institute of Chemical Biology and Nanomedicine, State Key Laboratory of Chemo and Biosensing, Hunan Provincial Key Laboratory of Biomacromolecular Chemical Biology, College of Chemistry and Chemical Engineering) N Ning Chen (College of Chemistry, Chemical Engineering and Materials Science, and State Key Laboratory of Radiation Medicine and Protection) Z Zhi Tan (College of Materials Science and Engineering, Sichuan University 2 , Chengdu,) J Jie Xing (College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,) J Jianguo Zhu

Abstract

Developing lead-free piezoelectric materials with high thermal stability is essential for sensing and actuation applications in harsh environments. In this work, trace amounts of lithium niobate (LiNbO3) were introduced into the 0.75BiFeO3–0.25BaTiO3 system to tailor the phase structure, lattice distortion, and defect chemistry. The substitution of Li+/Nb5+ for A-/B-site elements promotes partial rhombohedral (R) to tetragonal (T) phase transition, enhances tetragonal distortion, reduces oxygen vacancy formation, and simultaneously strengthens phase separation. This slightly weakens long-range ferroelectric order and facilitates the formation of a suitable amount of nanodomains. The optimized composition (x = 0.001) exhibits highly stable piezoelectric constant (d33) around 107 pC/N (at room temperature) over a broad temperature range of 30–322 °C, with fluctuations below 10%, and retains a high piezoelectric response (d33 ∼ 103 pC/N) even after aging at 300 °C for 12 h. This enhanced stability stems from the balanced interplay among the thermal disturbance de-pinning effect, thermally driven dipole-moment attenuation effect, and thermally induced ferroelectric domain disorder effect. This study offers an effective defect-phase-domain design strategy for realizing lead-free piezoelectric ceramics with high thermal reliability.

Article Details

Volume / Issue Vol. 139, Issue 20
Published May 28, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (9)

M

Mingyue Mo

College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,

J

Jiaxin Sun

J

Jinjie Zhan

College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,

F

Fuyu Xie

College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,

R

Rui Tang

Institute of Chemical Biology and Nanomedicine, State Key Laboratory of Chemo and Biosensing, Hunan Provincial Key Laboratory of Biomacromolecular Chemical Biology, College of Chemistry and Chemical Engineering

N

Ning Chen

College of Chemistry, Chemical Engineering and Materials Science, and State Key Laboratory of Radiation Medicine and Protection

Z

Zhi Tan

College of Materials Science and Engineering, Sichuan University 2 , Chengdu,

J

Jie Xing

College of Materials Science and Engineering, Sichuan University , 610064 Chengdu,

J

Jianguo Zhu