材料科学
陶瓷
电介质
电容器
粒度
储能
功率密度
热稳定性
光电子学
脉冲功率
极化(电化学)
复合材料
分析化学(期刊)
电压
功率(物理)
电气工程
化学工程
热力学
物理化学
工程类
化学
物理
色谱法
作者
Zhemin Chen,Y. Pu,Yating Ning,Yiting Hui,Chunhui Wu,Lei Zhang,Xuqing Zhang,Bo Wang
摘要
Abstract Eco‐friendly ceramic capacitors gradually become an important section of pulsed power devices. However, the synchronous realization of ultra‐high energy storage density ( W rec > 6 J/cm 3 ) and efficiency ( η > 90%) is difficult. Thus, a novel multiscale amelioration strategy in Na 0.5 Bi 0.5 TiO 3 ‐based ceramics is proposed to achieve ultra‐high energy storage density and efficiency. The multiscale amelioration strategy for (Na 0.5 Bi 0.47 La 0.03 ) 0.94 Ba 0.06 TiO 3 (NBLBT) ceramic focuses on grain size, bandgap width, and dielectric relaxor behavior, which can be regulated by introducing Sr(Al 0.5 Nb 0.25 Ta 0.25 )O 3 (SANT). On the one hand, the refined grain size and increased bandgap width are conducive to improving the breakdown strength. On the other hand, the optimized dielectric relaxation behavior is beneficial to suppress the remanent polarization. Accordingly, an ultrahigh W rec = 6.89 J/cm 3 and η = 90.1% are simultaneously achieved in 0.84NBLBT‐ 0.16SANT ceramic. In addition, the sample synchronously possesses excellent thermal and frequency stability (a variation within 5% in W rec and η ), transient discharge rate of t 0.9 ∼ 78.8 ns and a high‐power density of P D ∼ 114.5 MW/cm 3 . This study provides an effective strategy to further develop pulsed power devices.
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