材料科学
储能
电介质
极化(电化学)
弛豫铁电体
微观结构
介电谱
兴奋剂
介电强度
极地的
化学工程
铁电性
复合材料
陶瓷
高能
纳米技术
化学物理
离子
光电子学
光谱学
铁电陶瓷
介电损耗
作者
Jinghui Huang,Jiazhang Li,Menghan Li,Ying Jiang,Jinsong Cui,Xu Cheng,Ke Bi,Kezhen Hui,Peiyao Zhao,Limin Guo,Xiaohui Wang
标识
DOI:10.26599/jac.2026.9221298
摘要
Abstract As a critical research direction in dielectric energy storage applications, achieving a synergistic balance between a high breakdown strength (Eb) and high polarization remains a significant challenge for lead-free relaxor ferroelectrics. In this work, we proposed a rational chemical design strategy by simultaneously doping A- and B-site ions into classical BaTiO3 (BT) ferroelectrics, breaking the long-range ordered polarization, increasing the maximum polarization (Pm), reducing the remnant polarization (Pr), and improving the Eb. An ultrahigh recoverable energy storage density (Wrec) of 15.3 J/cm3, accompanied by a high energy storage efficiency (η) of 82.4%, was finally achieved at 1150 kV/cm. Impedance spectroscopy and microstructure analyses reveal enhanced activation energies for both grains and grain boundaries, as well as multiphase coexistence and formation of polar nanoregions (PNRs). This collectively contributes to an elevated breakdown strength while maintaining robust polarization. This study presents a promising pathway to achieve advanced energy storage performance in lead-free dielectric systems.
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