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Achieving high energy storage density under moderate electric field in K0.5Na0.5NbO3 ceramics via multiple synergistic optimization strategies

  • Xueliang Duan
  • , Juanjuan Wang
  • , Qizhen Chai
  • , Pengrong Ren
  • , Hongliang Du
  • , Li Jin
  • , Fusheng Lai
  • , Zhanhui Peng
  • , Xiaolian Chao
  • , Jiangbo Lu
  • , Quanming Guo
  • , Bochao Xie
  • Xi'an University of Technology
  • Shaanxi Normal University
  • Xi’an International University
  • University of Birmingham
  • Yale University

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Currently, research on energy storage technologies primarily focuses on dielectric capacitors, supercapacitors, batteries, and solid oxide fuel cells. Lead-free ceramic-based dielectric capacitors are considered highly promising materials for advanced pulsed power applications due to their distinct advantages, including high power density, rapid charge/discharge rates, and environmental friendliness. However, achieving high recoverable energy densities (Wrec > 5 J/cm3) typically requires the application of large external electric fields (>400 kV/cm), which pose significant risks to electrically insulated systems and hinder the further advancement of ceramic capacitors. Guided by multiple synergistic strategies, this study achieves a high Wrec of 6.0 J/cm3 with simultaneous an exceptional energy storage efficiency (η) of 71 % at moderate electric fields of 400 kV/cm is achieved in the (Sr0.7La0.2)(Mg1/3Ta2/3)O3 (SLMT) modified K0.5Na0.5NbO3 ceramic. The outstanding Wrec can primarily be attributed to its ultra-high polarization difference (ΔP) of approximately 42.2 μC/cm2, which results from the approximate core-shell structure with varying levels of polarization. Additionally, the incorporation of SLMT enhances the ceramics' dense microstructures, fine grains, and high intrinsic resistivity, thereby improving their breakdown electric field. This study highlights the potential of 0.91KNN-0.09SLMT ceramic as a promising dielectric material for advanced energy storage capacitors operating under moderate electric fields.

Original languageEnglish
Article number237453
JournalJournal of Power Sources
Volume649
DOIs
StatePublished - 1 Sep 2025

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Core-shell structure
  • Energy storage density
  • KNaNbO-Based
  • Moderate electric fields

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