材料科学
陶瓷电容器
电介质
电容器
储能
小型化
陶瓷
数码产品
复合材料
介电强度
微电子
光电子学
电力电子
工程物理
纳米技术
电气工程
电压
工程类
物理
量子力学
功率(物理)
作者
Junlei Qi,Minhao Zhang,Yiying Chen,Zixi Luo,Peiyao Zhao,Hang Su,Jian Wang,Hongye Wang,Letao Yang,Hao Pan,Shun Lan,Zhonghui Shen,Di Yi,Yuan–Hua Lin
标识
DOI:10.1016/j.xcrp.2022.101110
摘要
The market-dominating material BaTiO3 is highly crucial in advanced electronics and electric power systems owing to its fast charging/discharging speed and superior cycle life. However, the low energy storage efficiency and breakdown strength hinder further device miniaturization for energy storage applications. Herein, we design a high configurational entropy (HCE) material BaTiO3-BiFeO3-CaTiO3 with rational microstructural engineering that demonstrates an ultrahigh energy density of 7.2 J cm−3. The HCE design leads to the increased solubility of CaTiO3 in the matrix, which enhances the resistivity and polarization. Simultaneously, the nano-segregations around the grains can enhance the breakdown strength obviously due to strongly scattering of electron carriers and impeding of electrical breakdown pathways. Furthermore, the multilayer ceramic capacitors (MLCCs) using such dielectrics were constructed with energy density of 16.6 J cm−3 and efficiency of 83%. This work offers a route to explore new dielectric materials that are expected to benefit dielectric devices' compactness and high performance.
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