High-piezoelectric lead-free BiFeO3BaTiO3 ceramics with enhanced temperature stability and mechanical properties

IF 9.6 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Journal of Materiomics Pub Date : 2025-07-01 Epub Date: 2024-09-14 DOI:10.1016/j.jmat.2024.100937
Xiaoxiao Zhou , Yuxin Xu , Xiaoqi Gao , Chengchao Hu , Wan Jiang , Hezhang Li , Bo-Ping Zhang
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Abstract

BiFeO3BaTiO3 (BF–BT) ceramics exhibit higher piezoelectric coefficients (d33), Curie temperatures (TC), and temperature stability than other high-temperature lead-free piezoelectric materials. However, despite their crucial role in piezoelectric devices, the mechanical properties of BF–BT ceramics have been underexplored. A thorough evaluation of the mechanical properties of BF–BT is crucial for developing cost-effective and durable lead-free piezoelectric ceramics. Moreover, the specific causes of the high piezoelectric response and excellent temperature stability of BF–BT ceramics remain unclear owing to the instrumental detection threshold, which limits experimental studies to temperatures above 140 °C and below the degradation temperature of d33. To investigate the intrinsic origins of the high piezoelectricity and temperature stability of BF–xBT ceramics and to enhance their mechanical properties, a two-step sintering process is used to fabricate these ceramics (0.25 ≤ x ≤ 0.40). Owing to improvements in grain refinement and reduced Bi3+ volatilization, the BF–0.33 BT ceramic exhibits enhanced overall performance, with a modified small punch strength of 155 MPa, Vickers hardness of 5.2 GPa, a d33 of 220 pC/N at room temperature, TC of 466 °C, and d33 values exceeding 400 pC/N at 260 °C. Phase-field simulations, which address the limitations of device detection thresholds, reveal that with increasing temperature, the domain structure relaxes, and polarization intensity decreases. This indicates that changes in the high-temperature piezoelectric properties can be attributed to domain structure relaxation and the increase in dielectric constant. Overall, BF–BT ceramics exhibit superior piezoelectric performance, mechanical properties, and temperature stability, making them highly suitable for use in high-temperature and demanding environments.

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高压电无铅BiFeO3BaTiO3陶瓷具有增强的温度稳定性和机械性能
与其他高温无铅压电材料相比,BiFeO3BaTiO3 (BF-BT)陶瓷具有更高的压电系数(d33)、居里温度(TC)和温度稳定性。然而,尽管BF-BT陶瓷在压电器件中起着至关重要的作用,但其力学性能尚未得到充分的研究。全面评估BF-BT的力学性能对于开发具有成本效益和耐用性的无铅压电陶瓷至关重要。此外,由于仪器检测阈值的限制,BF-BT陶瓷具有高压电响应和优异温度稳定性的具体原因尚不清楚,实验研究仅限于140°C以上和d33降解温度以下的温度。为了研究BF-xBT陶瓷的高压电性和温度稳定性的内在原因,并提高其机械性能,采用两步烧结工艺制备了这些陶瓷(0.25≤x≤0.40)。由于晶粒细化和Bi3+挥发减少,BF-0.33 BT陶瓷的整体性能得到增强,改进后的小冲孔强度为155 MPa,维氏硬度为5.2 GPa,室温d33为220 pC/N, TC为466℃,260℃时d33值超过400 pC/N。相场模拟解决了器件检测阈值的限制,结果表明,随着温度的升高,畴结构松弛,极化强度降低。这表明高温压电性能的变化可归因于畴结构松弛和介电常数的增加。总体而言,BF-BT陶瓷具有优异的压电性能,机械性能和温度稳定性,使其非常适合在高温和苛刻的环境中使用。
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nano–BaTiO3 powder
来源期刊
Journal of Materiomics
Journal of Materiomics Materials Science-Metals and Alloys
CiteScore
14.30
自引率
6.40%
发文量
331
审稿时长
37 days
期刊介绍: The Journal of Materiomics is a peer-reviewed open-access journal that aims to serve as a forum for the continuous dissemination of research within the field of materials science. It particularly emphasizes systematic studies on the relationships between composition, processing, structure, property, and performance of advanced materials. The journal is supported by the Chinese Ceramic Society and is indexed in SCIE and Scopus. It is commonly referred to as J Materiomics.
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