Achieving ultrahigh energy storage performance over a broad temperature range in (Bi0.5Na0.5)TiO3-based eco-friendly relaxor ferroelectric ceramics via multiple engineering processes

Leiyang Zhang, Shuyao Cao, Yang Li, Ruiyi Jing, Qingyuan Hu, Ye Tian, Rui Gu, Jingrui Kang, D. O. Alikin, V. Ya Shur, Xiaoyong Wei, Gang Liu, Feng Gao, Hongliang Du, Yan Yan, Li Jin

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摘要

The development of ABO3 perovskite-structured dielectric materials with high recoverable energy storage density (Wrec) and power density (PD) is crucial for the downsizing of pulsed power devices. Despite several research efforts, achieving a high Wrec over a wide working temperature range in an environmentally benign system remains a difficulty. A synergistic design strategy is given here, which includes concurrently doping at the A- and B-site to achieve a spread and depressed dielectric response, adding sintering aids, and employing advanced viscous polymer rolling technology for dense and ultra-thin ceramic samples, respectively. Finally, at a relatively low electric field of 380 kV/cm, an ultrahigh Wrec of 6.57 J/cm3 is realized in (Bi0.5Na0.5)0.93Ca0.07Ti0.85Zr0.15O3-0.5 wt% Li2CO3 component, which benefits from gentle polarization saturating and improved breakdown strength. The Wrec can be maintained above 6 J/cm3 while maintaining strong thermal stability (variation ≤ ± 3%) over a temperature range of 30–150 °C. Because BNT-based materials have such high energy storage performance and temperature stability, they are not only a promising candidate for replacing lead-based dielectrics, but also a valuable guide for developing new high-performance ferroelectric materials for future energy storage devices in the pulsed power system.

源语言英语
文章编号163139
期刊Journal of Alloys and Compounds
896
DOI
出版状态已出版 - 10 3月 2022

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