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March 3, 2026Advanced Materials5 citations

Ordered Heterogeneous Interfaces Enable Temperature‐Insensitive and Ultrahigh‐Energy‐Storage Multilayer Ceramic Capacitors

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XHXiafeng HeJWJian WangYDYuxiao Du

Key Points

  • Achieving an ultrahigh recoverable energy storage density of 16.0 J cm-3 and breakdown strength of 1140 kV cm-1.
  • Variation in thermal stability remains less than 3% across 20-160 °C, highlighting improved performance.
  • Constructing ordered heterogeneous interfaces by embedding Al2O3 plates enhances both thermal stability and energy storage density.
  • The findings underscore the promise of interface engineering for next-generation multilayer ceramic capacitor technologies.

Abstract

Achieving both high energy storage density and excellent thermal stability in lead-free multilayer ceramic capacitors (MLCCs) has long been a critical challenge for advanced electronic systems. To address this issue, we propose an innovative strategy to simultaneously improve both properties by constructing ordered heterogeneous interfaces through embedding parallel-aligned Al2O3 plates in 0.6SrTiO3-0.4Bi0.5Na0.5TiO3 (0.6ST-0.4BNT) lead-free ceramics. This approach effectively suppresses the charge carrier injection and transport, yielding an ultrahigh recoverable energy storage density of 16.0 J cm-3 with a giant breakdown strength of 1140 kV cm-1 in Al2O3 modified 0.6ST-0.4BNT based MLCCs, which outperforms most state-of-the-art dielectric ceramics. Furthermore, the MLCCs exhibit superior thermal stability with variation less than 3% across a broad temperature range of 20-160 °C. The overall superior performance underscores the potential of the ordered heterogeneous interface engineering in advancing the thermally stable high-density energy storage materials for next-generation MLCC applications.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/69a75ad2c6e9836116a2125ahttps://doi.org/10.1002/adma.202520618
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