陶瓷
储能
铅(地质)
材料科学
化学工程
矿物学
纳米技术
复合材料
冶金
化学
物理
热力学
工程类
地质学
地貌学
功率(物理)
作者
Can Tian,Haiping Tang,Yan Liang,Yuan Zhou,Haikui Song,Kun Yu,Yan Yan,Jinfeng Sun,Shaofei Zhang,Hua Tan,Haibo Zhang,Abdul Manan,S. N. Krylova,А. С. Крылов,A. N. Vtyurin,Gang Liu
摘要
Abstract Lead‐free dielectric ceramics are gaining prominence in energy storage due to their superior power density and rapid charge/discharge capabilities. However, Na 0.5 Bi 0.5 TiO 3 (NBT)‐based ceramics stand out as particularly promising dielectric materials, but face two critical challenges: excessive remnant polarization and inadequate dielectric strength, which substantially limit their energy storage performance. To enhance energy storage performance in lead‐free ferroelectric ceramics, a stepwise optimization method was adopted in this study. The strategy combines compositional engineering through precise elemental ratio adjustment to tailor microstructural characteristics, and processing optimization to significantly enhance breakdown strength ( E b ). This dual‐approach methodology has been experimentally demonstrated to effectively boost the energy storage capabilities of the ceramic system. The incorporation of SrTiO 3 as a modifier successfully induced nanoscale domain structures in the 0.91Na 0.5 Bi 0.5 TiO 3 ‐0.09K 0.7 La 0.1 NbO 3 (NBT‐KLN‐based) system, yielding desirable slim P ‐ E loops. Subsequently, the viscous polymer processing (VPP) technique was utilized to minimize defects and boost density, thereby significantly enhancing the E b . The optimized NBT‐KLN‐0.20ST‐vpp composite ceramics demonstrated remarkable energy storage properties, achieving a high W rec of 5.34 J/cm 3 and efficiency of 82% under 460 kV/cm. This study not only offers a viable strategy for improving NBT‐based ceramics but also lays the groundwork for designing advanced energy storage materials, demonstrating promising applications in compact power electronics.
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