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April 29, 2026Advanced Functional Materials0 citations

High‐Entropy Superrelaxor State Engineering toward Exceptional Capacitive Energy Storage in Lead‐Free Ceramics under Moderate Electric Field

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CYChongwen YuZLZhipeng LiDLDong‐Xu Li

Key Points

  • To enhance the energy storage performance of lead-free dielectric ceramics under moderate electric fields.
  • Designed (1‐x)(Ba0.3Sr0.7)0.35(Bi0.5Na0.5)0.65TiO3 ‐ x SrHfO3 (BNBST‐x SH) ceramics using high-entropy superrelaxor state engineering.
  • For different x values, analyzed configurational entropy and its effects on phase competition and ceramic stability.
  • Evaluated energy storage performance under moderate electric fields ranging from 300 to 500 kV/cm.
  • Achieved a recoverable energy storage density of 8.13 J/cm3 and efficiency of 91.67% in BNBST‐0.20SH ceramic under 425 kV/cm.
  • Demonstrated robust energy storage performance stability alongside ultra-fast charging and discharging speeds.

Abstract

ABSTRACT Although lead‐free dielectric ceramics have achieved ultra‐high energy storage performance (ESP) under extreme electric fields ( E > 500 kV/cm), operation within the moderate electric field range (300 kV/cm ≤ E ≤ 500 kV/cm) is the most crucial and reliable for practical pulsed power applications. Unfortunately, simultaneously achieving high recoverable energy storage density ( W rec > 8 J/cm 3 ) and efficiency ( ƞ > 90%) under moderate electric field remains a challenge. Herein, (1‐ x )(Ba 0.3 Sr 0.7 ) 0.35 (Bi 0.5 Na 0.5 ) 0.65 TiO 3 ‐ x SrHfO 3 (BNBST‐ x SH) ceramics are designed through high‐entropy (HE) superrelaxor state engineering to optimize their ESP. As the x value increases, configurational entropy rises, inducing phase competition and stabilizing the superrelaxor state at room temperature. The HE environment disrupts long‐range ferroelectric order and promotes random octahedral tilting. Additionally, the superrelaxor state enables the coexistence of long‐range disordered weakly polar and short‐range ordered polar structures. Consequently, an excellent W rec of 8.13 J/cm 3 with a high ƞ of 91.67% is obtained in BNBST‐0.20SH ceramic under a moderate electric field of 425 kV/cm, which also exhibits robust ESP stability and ultra‐fast charging‐discharging speed. This work provides an effective strategy for enhancing the ESP of lead‐free dielectric ceramics under moderate electric field and offers a promising material for applications in integrated industrial systems.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/69f154a4879cb923c4944de5https://doi.org/10.1002/adfm.75606
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