Abstract
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.
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