摘要
Antiferroelectric (AFE) ceramics have emerged as promising materials for high-power energy-storage applications, yet their practical performance is fundamentally constrained by the intrinsic trade-off among phase-transition stability, polarization response, and hysteresis loss. Here, we report a local disorder engineering strategy in lead zirconate titanate-based ceramics, in which Sn4+ incorporation induces a spatially heterogeneous AFE modulation that enables the simultaneous optimization of energy density and efficiency. Atomic- resolution high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) reveals that Sn4+ partially disrupts the pristine long-range fourfold antiparallel AFE order, giving rise to the coexistence of conventional AFE domains and nanoscale microdomains with reduced displacement amplitudes and disordered polarization orientations. Phase-field simulations further demonstrate that this locally disordered AFE configuration lowers the AFE-FE phase-transition barrier and suppresses hysteresis loss, resulting in pronounced relaxor-like behavior under electric fields. As a result, the optimized (Pb0.92Sr0.08)(Zr0.54Sn0.45Ti0.01)O3 ceramic delivers a recoverable energy density of ∼10.49 J cm−3 with an efficiency of ∼87.14% at 445 kV cm−1, together with a high power density of 275.9 MW cm−3 and an ultrafast discharge time ( t 0.9) of 58.8 ns. In addition, robust thermal and frequency stability is maintained. These results demonstrate that engineering locally disordered AFE modulation provides an effective pathway for developing high-efficiency and robust energy-storage ceramics.
| 源语言 | 英语 |
|---|---|
| 期刊论文编号 | 105191 |
| 期刊 | Energy Storage Materials |
| 卷 | 89 |
| DOI | |
| 出版状态 | 已出版 - 6月 2026 |
| 已对外发布 | 是 |
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