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April 24, 2026Nature Communications0 citationsOpen Access

Engineered local polarization disorder unlocks record efficiency in antiferroelectric capacitors

FCFukang ChenLZLeiyang ZhangYYYule Yang

Key Points

  • To explore how engineered local polarization disorder influences energy storage efficiency in antiferroelectric ceramics.
  • Introduced controlled compositional heterogeneity in PbZrO3-based ceramics.
  • Conducted phase-field simulations alongside experimental validations.
  • Measured energy storage metrics under high-field conditions.
  • Achieved recoverable energy storage density (Wrec) of 23.2 J cm−3 and efficiency (η) of 98.1% at 167 kV mm−1.
  • Obtained a figure of merit of 1220, surpassing most reported multilayer ceramic capacitors.
  • Demonstrated reduced polarization hysteresis while maintaining high polarization strength.

Abstract

Antiferroelectric ceramics are promising for next-generation electrostatic energy storage, yet their performance is fundamentally constrained by the trade-off between high energy storage efficiency (η) and large recoverable energy storage density (Wrec), arising from the antiferroelectric-to-ferroelectric phase transition and associated hysteresis loss. Here, we show that a combination of engineered local polarization disorder and high-field operability enables a highly favorable balance of these metrics. In PbZrO3-based ceramics, we introduced controlled compositional heterogeneity that broadens polarization vector distributions while preserving the antiferroelectric modulation. Phase-field simulations and experiments indicate that this engineered disorder spatially distributes the switching fields associated with the antiferroelectric–ferroelectric transition, thereby reducing polarization hysteresis while maintaining high polarization strength. As a result, the multilayer ceramic capacitors achieve Wrec = 23.2 J cm−3 and η = 98.1% at 167 kV mm−1, corresponding to a figure of merit of 1220, surpassing most reported state-of-the-art multilayer ceramic capacitors under comparable high-field conditions. These findings highlight local polarization disorder as a key mechanism that, in combination with enhanced breakdown strength, enables ultrahigh energy storage performance and offers a promising route toward high-performance capacitive energy storage for advanced pulsed-power applications. The authors introduce controlled compositional heterogeneity to broaden polarization vector distributions while preserving the antiferroelectric modulation in PbZrO3-based ceramics. They reduce polarization hysteresis while maintaining high polarization strength.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69eb0cb2553a5433e34b5a7bhttps://doi.org/10.1038/s41467-026-72274-2
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