@article{Wang2026, 
author = {Junnan Wang and Zhi Zhou and Chengxin Xu and Jiageng Xu and Yu Chen},
title = {Li/Mn co-doped K0.5Bi4.5Ti4O15 high-temperature piezoelectric ceramics: Structures, properties, and ultrasonic transducer applications},
year = {2026},
journal = {Journal of Advanced Ceramics},
volume = {15},
number = {4},
pages = {9221277},
keywords = {K0.5Bi4.5Ti4O15, Li/Mn co-doping, high-temperature stability, pulse–echo signal, ultrasonic transducer},
url = {https://www.sciopen.com/article/10.26599/JAC.2026.9221277},
doi = {10.26599/JAC.2026.9221277},
abstract = {K0.5Bi4.5Ti4O15 (KBT, Curie temperature TC = 558 °C), a representative Aurivillius-type ferroelectric material, is considered a promising candidate for high-temperature piezoelectric devices. In this study, the co-doping strategy was adopted by introducing Li/Mn ions into the A-site of KBT, and a series of polycrystalline ceramics with the formula (KBi)0.5−x(LiMn)xBi4Ti4O15 (x = 0–0.065, abbreviated as KBT–LM1000x) were synthesized via the conventional solid-state reaction method. The substitution mechanisms of Li/Mn ions and their doping concentration effects on the crystalline structure, defect chemistry, and dielectric/ferroelectric properties were investigated. The synergistic substitution of Li/Mn for K/Bi induced a transition of KBT in its dielectric behavior from a sharp λ-type anomaly to a diffuse or relaxor-like response, with both diffuseness parameter γ and TC values gradually increasing with increasing x. The Li/Mn co-doping strategy effectively suppressed the leakage conduction of KBT, achieving balanced control of conduction suppression and domain-wall mobility. Among the systems, KBM55 achieved the highest piezoelectric coefficient (d33 = 30 pC/N) and planar electromechanical coupling factor (kp = 6.4%), as well as a higher Curie temperature (TC = 590 °C). Furthermore, an ultrasonic transducer was fabricated by using this sample as conversion elements, which demonstrated a center frequency (fc) of 2.24 MHz, a −6 dB bandwidth (BW–6 dB) of 33.95%, and stable pulse–echo signals up to 250 °C.}
}