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Harnessing Multisite High-Entropy Architecture for Ultrahigh Energy Storage Multilayer Capacitors

  • Zhen Liu
  • , Haonan Peng
  • , Teng Lu
  • , Tiantian Wu
  • , Cheng Yang
  • , Zhengqian Fu
  • , Zhichao Hong
  • , Jiyang Xie
  • , Takashi Honda
  • , Yonghong Chen
  • , Wanbiao Hu
  • , Fangfang Xu
  • , Zhisheng Lin
  • , Yun Liu*
  • , Shujun Zhang*
  • , Genshui Wang*
  • , Junhao Chu
  • *此作品的通讯作者
  • CAS - Shanghai Institute of Ceramics
  • University of Chinese Academy of Sciences
  • Australian National University
  • Ltd.
  • Yunnan University
  • High Energy Accelerator Research Organization, Institute of Materials Structure Science
  • University of Wollongong
  • CAS - Shanghai Institute of Technical Physics

科研成果: 期刊稿件文章同行评审

摘要

High energy density lead-free dielectric capacitors play a pivotal role in state-of-the-art electrical and electronic systems. Nevertheless, the low energy storage capacities have persistently posed a significant impediment to the ongoing trend toward the miniaturization and integration of electronic devices. Here, we report an equimolar high-entropy relaxor ferroelectric multilayer capacitor that demonstrates exceptional energy storage performance by harnessing flexible multisite tetragonal tungsten bronze (TTB) high-entropy architecture. Our findings reveal that the equimolar high-entropy design results in NbO6octahedra distortion, disrupting long-range ferroelectric order while preserving strong off-center displacements along the polar axis at a local scale. This unique structure characteristic of high-entropy TTB not only enhances its relaxor feature, reducing hysteresis, but also maintains high polarizability under applied electric fields. Consequently, our high-entropy TTB multilayer ceramic capacitors achieved an unprecedented recoverable energy density of 20.2 J·cm–3, accompanied by a notably enhanced efficiency of 93.8%. This approach opens the door for the development of innovative functional ceramics and devices with prominent energy storage capability by designing flexible multisite high-entropy architecture.

源语言英语
页(从-至)41620-41628
页数9
期刊Journal of the American Chemical Society
147
45
DOI
出版状态已出版 - 12 11月 2025
已对外发布

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