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Synergistic Relaxor Engineering and Microstructural Densification Enable Ultrahigh Energy Storage in BNT-Based Lead-Free Ceramics

  • Yang Zhao
  • , Yu Wu
  • , Fukang Chen
  • , Xinru Nie
  • , Leiyang Zhang
  • , Ruiyi Jing
  • , Jun Yang
  • , Shaodong Cheng
  • , Li Jin
  • Xi'an Jiaotong University
  • Ltd.

Research output: Contribution to journalArticlepeer-review

Abstract

Lead-free dielectric ceramics with simultaneously high recoverable energy-storage density and efficiency are highly desirable for pulsed-power capacitors, yet their performance is fundamentally limited by the trade-off among polarization strength, hysteresis loss, and breakdown strength. Here, we report a multiscale synergistic strategy in (0.94−x)(Bi0.5Na0.5)TiO3-0.06KNbO3-xSrTiO3 [(0.94−x)BNT-0.06KN-xST] ceramics by coupling relaxor regulation with microstructural densification. KN incorporation induces R3c/P4bm local phase coexistence in the BNT matrix, weakening long-range ferroelectric order and initiating a transition toward a relaxor state. Further ST addition enhances local structural heterogeneity, random fields, and polar nanoregions, leading to highly reversible polarization with suppressed hysteresis. In parallel, tape casting produces a dense and homogeneous microstructure, effectively mitigating defect-induced field concentration and enhancing breakdown strength. The optimized x = 0.32 composition exhibits a high breakdown strength of 804 kV cm−1 and delivers an ultrahigh recoverable energy density of 10.1 J cm−3 with an efficiency of 97.6% at 820 kV cm−1. Frequency- and temperature-dependent measurements at 450 kV cm1 further demonstrate robust energy-storage behavior under the tested field condition. This work establishes a disorder-engineered relaxor strategy combined with microstructural densification to reconcile polarization reversibility and electric-field endurance in lead-free dielectric ceramics.

Original languageEnglish
JournalSmall
DOIs
StateAccepted/In press - 2026
Externally publishedYes

Keywords

  • BNT
  • lead-free ceramics
  • relaxor ferroelectrics
  • ultrahigh efficiency

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