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Heterovalent-doping-enabled atom-displacement fluctuation leads to ultrahigh energy-storage density in AgNbO3-based multilayer capacitors

  • Li Feng Zhu
  • , Shiqing Deng
  • , Lei Zhao
  • , Gen Li
  • , Qi Wang
  • , Linhai Li
  • , Yongke Yan
  • , He Qi
  • , Bo Ping Zhang
  • , Jun Chen
  • , Jing Feng Li
  • University of Science and Technology Beijing
  • Hebei University
  • Tsinghua University

科研成果: 期刊稿件文章同行评审

137 引用 (Scopus)

摘要

Dielectric capacitors with high energy storage performance are highly desired for next-generation advanced high/pulsed power capacitors that demand miniaturization and integration. However, the poor energy-storage density that results from the low breakdown strength, has been the major challenge for practical applications of dielectric capacitors. Herein, we propose a heterovalent-doping-enabled atom-displacement fluctuation strategy for the design of low-atom-displacements regions in the antiferroelectric matrix to achieve the increase in breakdown strength and enhancement of the energy-storage density for AgNbO3-based multilayer capacitors. An ultrahigh breakdown strength ~1450 kV·cm−1 is realized in the Sm0.05Ag0.85Nb0.7Ta0.3O3 multilayer capacitors, especially with an ultrahigh Urec ~14 J·cm−3, excellent η ~ 85% and PD,max ~ 102.84 MW·cm−3, manifesting a breakthrough in the comprehensive energy storage performance for lead-free antiferroelectric capacitors. This work offers a good paradigm for improving the energy storage properties of antiferroelectric multilayer capacitors to meet the demanding requirements of advanced energy storage applications.

源语言英语
期刊论文编号1166
期刊Nature Communications
14
1
DOI
出版状态已出版 - 12月 2023

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