High-entropy enhanced capacitive energy storage

被引:0
|
作者
Bingbing Yang
Yang Zhang
Hao Pan
Wenlong Si
Qinghua Zhang
Zhonghui Shen
Yong Yu
Shun Lan
Fanqi Meng
Yiqian Liu
Houbing Huang
Jiaqing He
Lin Gu
Shujun Zhang
Long-Qing Chen
Jing Zhu
Ce-Wen Nan
Yuan-Hua Lin
机构
[1] Tsinghua University,State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering
[2] Tsinghua University,National Center of Electron Microscopy in Beijing, School of Materials Science and Engineering
[3] Ji Hua Laboratory,State Key Laboratory of Low Dimensional Quantum Physics and Department of Physics
[4] Tsinghua University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
[5] Nanyang Technological University,Beijing National Laboratory for Condensed Matter Physics, Institute of Physics
[6] Chinese Academy of Sciences,State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Center of Smart Materials and Devices
[7] Wuhan University of Technology,Department of Physics
[8] Southern University of Science and Technology,Advanced Research Institute of Multidisciplinary Science
[9] Beijing Institute of Technology,Institute for Superconducting and Electronic Materials, Australian Institute of Innovative Materials
[10] University of Wollongong,Department of Materials Science and Engineering, Materials Research Institute
[11] The Pennsylvania State University,undefined
来源
Nature Materials | 2022年 / 21卷
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摘要
Electrostatic dielectric capacitors are essential components in advanced electronic and electrical power systems due to their ultrafast charging/discharging speed and high power density. A major challenge, however, is how to improve their energy densities to effectuate the next-generation applications that demand miniaturization and integration. Here, we report a high-entropy stabilized Bi2Ti2O7-based dielectric film that exhibits an energy density as high as 182 J cm−3 with an efficiency of 78% at an electric field of 6.35 MV cm−1. Our results reveal that regulating the atomic configurational entropy introduces favourable and stable microstructural features, including lattice distorted nano-crystalline grains and a disordered amorphous-like phase, which enhances the breakdown strength and reduces the polarization switching hysteresis, thus synergistically contributing to the energy storage performance. This high-entropy approach is expected to be widely applicable for the development of high-performance dielectrics.
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页码:1074 / 1080
页数:6
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