Li Yunting, Lu Guangrui, Zhao Rui, Zhao Jiaqi, Hao Jigong, Li Wei, Bai Wangfeng, Pan Zhongbin, Li Peng, Zhai Jiwei
School of Materials Science and Engineering, Liaocheng University, Liaocheng 252059, China.
College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, China.
ACS Appl Mater Interfaces. 2024 Oct 7. doi: 10.1021/acsami.4c12219.
Lead-free dielectric ceramics exhibiting excellent energy storage capacity, long service life, and good safety have been considered to have immense prospects in next-generation pulsed power capacitors. However, it is still challenging to simultaneously achieve large recoverable energy density (), high efficiency (η), and excellent charge-discharge performance. Herein, we fabricated lead-free (1 - )(BiNa)TiO-(SrBiLa)TiO ((1 - )BNT-SBLT) dielectric ceramics, and a good balance between ∼ 4.15 J/cm and η ∼ 93.89% under 333 kV/cm, as well as superior charge-discharge properties (power density ∼ 185.42 MW/cm, discharge energy density ∼ 2.2 J/cm, and discharge time ∼ 53.8 ns under 250 kV/cm), was achieved in 0.6BNT-0.4SBLT ceramics. The good energy storage performance can be attributed to the synergistic contributions of significantly enhanced caused by grain refinement and the large Δ values induced by polar nanoregions (PNRs) under a high external electric field. Moreover, the 0.6BNT-0.4SBLT ceramics also present excellent temperature stability of energy storage properties (the variations of and η less than 0.45% and 0.14%, respectively) over a temperature range of 25-185 °C. These figures of merit make 0.6BNT-0.4SBLT ceramics the most promising candidate for energy storage capacitors in advanced pulse power systems.
具有优异储能容量、长使用寿命和良好安全性的无铅介电陶瓷被认为在下一代脉冲功率电容器中具有巨大的应用前景。然而,要同时实现高的可恢复能量密度()、高效率(η)和优异的充放电性能仍然具有挑战性。在此,我们制备了无铅(1 - )(BiNa)TiO-(SrBiLa)TiO ((1 - )BNT-SBLT)介电陶瓷,在0.6BNT-0.4SBLT陶瓷中,在333 kV/cm下实现了约4.15 J/cm 和 η约93.89%之间的良好平衡,以及优异的充放电性能(在250 kV/cm下功率密度约为185.42 MW/cm、放电能量密度约为2.2 J/cm、放电时间约为53.8 ns)。良好的储能性能可归因于晶粒细化导致的显著增强以及高外电场下极性纳米区域(PNRs)诱导的大Δ值的协同贡献。此外,0.6BNT-0.4SBLT陶瓷在25-185 °C的温度范围内还表现出优异的储能性能温度稳定性(和η的变化分别小于0.45%和0.14%)。这些优异特性使0.6BNT-0.4SBLT陶瓷成为先进脉冲功率系统中储能电容器最有前景的候选材料。