材料科学
陶瓷
磁滞
超短脉冲
工作(物理)
弛豫铁电体
极化(电化学)
光电子学
调制(音乐)
纳米技术
极地的
兴奋剂
铁电性
结构稳定性
带隙
理论(学习稳定性)
能量密度
转化(遗传学)
电压
工程物理
结构变化
铁电陶瓷
粒度
性能增强
作者
Dongmei Jing,Hao Li,Jianmin Wu,Li Guo,Peng Li,Jia‐Han Zhang,Ningning Sun,Ye Zhao,Liwen Zhang,Jinhua Du,Shuhui Bo,Yong Li
标识
DOI:10.1021/acssuschemeng.6c05382
摘要
Pb-free relaxor ferroelectric materials, owing to the integration of superior high-power density ( P D ) alongside ultrafast discharge kinetics, serve as optimal candidates for contemporary pulsed-power applications. Nevertheless, the pursuit of ultrahigh recoverable energy density ( W rec ) together with high efficiency ( η ) is still a difficulty because enhancing polarization often results in increased hysteresis loss. To tackle this challenge, we present a multiscale composition regulation approach by introducing Sm(Mg 2/3 Nb 1/3 )O 3 into the BiFeO 3 -BaTiO 3 (BF-BT) matrix. By employing this strategy, we successfully achieve a transformation from R -phase to T -phase, grain refinement, polar nanocluster formation, accompanied by higher bandgap ( E g ), and relaxor behavior. The synergistic effect of these structural changes contributes to the comprehensive improvement of energy-storage properties in the doped ceramics. Eventually, a W rec of 10.53 J/cm 3 and an η of 80.2% were achieved under 610 kV/cm. Furthermore, the optimized ceramics demonstrated remarkable stability under varying temperature, frequency, and cycling conditions, as well as exceptional pulse charge−discharge capability. This work demonstrates a viable strategy for designing materials for superior energy storage.
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