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Synergically improved energy storage performance and stability in sol–gel processed BaTiO 3/(Pb,La,Ca)TiO 3/BaTiO 3 tri-layer films with a crystalline engineered sandwich structure

铁电性 材料科学 无定形固体 电介质 纳米晶材料 退火(玻璃) 极化(电化学) 电场 电容器 结晶 光电子学 矿物学 纳米技术 化学工程 复合材料 结晶学 电气工程 电压 量子力学 化学 物理化学 工程类 物理
作者
Jinpeng Liu,Ying Wang,Hanfei Zhu,Hong Luo,Xiao Zhai,Yu Huan,Jing Yan,Kun Wang,C. H. Liu,Hongbo Cheng,Jun Ouyang
出处
期刊:Journal of Advanced Ceramics [Springer Science+Business Media]
卷期号:12 (12): 2300-2314 被引量:12
标识
DOI:10.26599/jac.2023.9220821
摘要

Achieving an excellent energy storage performance, together with a high cycling reliability, is desirable for expanding the technological applications of ferroelectric dielectrics. However, in a well-crystallized ferroelectric material, the concomitant high polarizability and low polarization-saturation field have led to a square-shaped polarization-electric field loop, fatally impairing both recoverable energy density (Wrec) and efficiency (η). Nanocrystalline ferroelectric films with a macroscopically amorphous structure have shown an improved Wrec and η, but their much-lower polarizability demands an extremely high electric field to achieve such performances, which is undesirable from economical viewpoints. Here, we propose a strategy to boost the energy storage performances and stabilities of ferroelectric capacitors simultaneously by constructing a tri-layer film in which a well-crystallized ferroelectric layer was sandwiched by two pseudo-linear dielectric layers with a dominant amorphous structure. In sol-gel-derived BaTiO3/(Pb,La,Ca)TiO3/BaTiO3 (BTO/PLCT/BTO) tri-layer films, we show that the above design is realized via a rapid thermal annealing which fully crystallized the middle PLCT layer while left the top/bottom BTO cap layers in a poor crystallization status. This sandwiched structure is endowed with an enhanced maximum polarization while a small remnant one, and a much-delayed polarization saturation, which corresponds to a large Wrec~80 J/cm3 and a high η~86%. Furthermore, the film showed an outstanding cycling-stability: its Wrec and η remain essentially unchanged after 109 electric cycles (DW/W<4%, Dη/η<2%). These good energy storage characteristics have proved the effectiveness of our proposed strategy, paving a way for the utilization of sandwiched films in applications of electric power systems and advanced pulsed-discharge devices.
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