Wang Dong, Jiang Hao, Tang Rui, Gao Tingting, Chen Qifan, Li Bing, Tan Zhi, Zhu Jianguo, Xing Jie
College of Materials Science and Engineering, Sichuan University, 610064 Chengdu, China.
State Key Laboratory of Environment-Friendly Energy Materials, School of Materials and Chemistry, Southwest University of Science and Technology, 621010 Mianyang, China.
ACS Appl Mater Interfaces. 2025 Aug 13;17(32):45906-45919. doi: 10.1021/acsami.5c11452. Epub 2025 Jul 29.
Barium titanate (BT)-based lead-free ceramics are extensively utilized in capacitors, owing to their superior energy storage capabilities. However, pure BT ceramics are limited by high remnant polarization () and low breakdown strength (), which hinder their energy storage performance. In this work, an optimization strategy is implemented by introducing Bi(MgNb)O (BMN) and NaTaO (NT) components into the BT ceramics to obtain a relaxor ferroelectric ceramic with markedly enhanced energy storage properties and excellent mechanical characteristics. The intrinsic wide band gap of NT, coupled with the incorporation of BMN and NT fostering significant grain refinement, contributes to a notable enhancement in the of the ceramics. The codoping of Bi, Mg, and Nb disrupts the long-range ferroelectric order via domain engineering. The results show that the BT-BMN-NT ceramics exhibit a high recoverable energy density () of 6.22 J/cm and an energy efficiency (η) of 80.21% under an electric field of 650 kV/cm, along with excellent thermal stability and excellent charge-discharge performance. Collectively, these findings highlight the significant promise of BT-BMN-NT ceramics for deployment in advanced pulsed power capacitor applications.
钛酸钡(BT)基无铅陶瓷因其卓越的储能能力而被广泛应用于电容器中。然而,纯BT陶瓷受到高剩余极化强度()和低击穿强度()的限制,这阻碍了它们的储能性能。在这项工作中,通过将铋(镁铌)氧(BMN)和钽酸钠(NT)成分引入BT陶瓷中实施了一种优化策略,以获得具有显著增强的储能性能和优异机械特性的弛豫铁电陶瓷。NT固有的宽带隙,加上BMN和NT的加入促进了显著的晶粒细化,有助于显著提高陶瓷的。铋、镁和铌的共掺杂通过畴工程破坏了长程铁电有序。结果表明,BT-BMN-NT陶瓷在650 kV/cm的电场下表现出6.22 J/cm的高可恢复能量密度()和80.21%的能量效率(η),以及优异的热稳定性和优异的充放电性能。总的来说,这些发现突出了BT-BMN-NT陶瓷在先进脉冲功率电容器应用中的巨大潜力。