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通过全尺度分级结构实现基于SrTiO的介电陶瓷的卓越储能性能。

Superior energy storage properties in SrTiO-based dielectric ceramics through all-scale hierarchical architecture.

作者信息

Zuo Chengyang, Xu Jialing, Yang Shilin, Cao Zhiqin, Yu Hongtao, Liu Jingsong, Wei Xianhua

机构信息

College of Vanadiun and Titanium, Pan Zhihua University, Pan Zhihua 617000, P. R. China.

State Key Laboratory of Environmental-friendly Energy Materials, Southwest University of Science and Technology, Mianyang 621010, P. R. China.

出版信息

Mater Horiz. 2024 Apr 2;11(7):1732-1740. doi: 10.1039/d3mh01965a.

Abstract

The restricted energy density in dielectric ceramic capacitors is challenging for their integration with advanced electronic systems. Numerous strategies have been proposed to boost the energy density at different scales or combine those multiscale effects. Herein, guided by all-scale synergistic design, we fabricated SrBiTiO ceramics doped with (BiNa)(ZrTi)O by sintering the nanopowders by solution combustion synthesis, which demonstrate exceptional energy storage performance (ESP). Notably, an ultrahigh recoverable energy density of 11.33 J cm, accompanied by an impressive energy efficiency of 89.30%, was achieved at an extremely high critical electric field of 961 kV cm. These primary energy storage parameters outperform those of previously reported ceramic capacitors based on SrTiO. Additionally, an excellent comprehensive performance is also realized, including a substantial power density of 156.21 MW cm (at 300 kV cm), an extraordinarily short discharge time of 97 ns, a high Vickers hardness rating of approximately 8.23 GPa, and outstanding thermal and frequency stability. This enhancement can be attributed to the synergistic effect at all scales from atomic substitution, polar nano regions, submicrometer grain, and sample thickness. Consequently, this panoscopic approach has effectively demonstrated the potential to enhance the ESP of dielectric ceramics.

摘要

介电陶瓷电容器中受限的能量密度对其与先进电子系统的集成构成挑战。人们已经提出了许多策略来在不同尺度上提高能量密度或结合这些多尺度效应。在此,在全尺度协同设计的指导下,我们通过溶液燃烧合成法烧结纳米粉末制备了掺杂(BiNa)(ZrTi)O的SrBiTiO陶瓷,其展现出卓越的储能性能(ESP)。值得注意的是,在961 kV/cm的极高临界电场下,实现了11.33 J/cm的超高可恢复能量密度,同时伴随89.30%的令人印象深刻的能量效率。这些主要储能参数优于先前报道的基于SrTiO的陶瓷电容器。此外,还实现了优异的综合性能,包括156.21 MW/cm的高功率密度(在300 kV/cm时)、97 ns的极短放电时间、约8.23 GPa的高维氏硬度以及出色的热稳定性和频率稳定性。这种增强可归因于从原子取代、极性纳米区域、亚微米晶粒到样品厚度的全尺度协同效应。因此,这种全景式方法有效地证明了提高介电陶瓷储能性能的潜力。

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