摘要
Piezoelectric materials with a high piezoelectric coefficient (d33) and high mechanical quality factor (Qm) are vital for advanced high-power applications. However, achieving this combination is challenging, particularly for lead-free piezoelectrics, because a high d33 value relies on mobile domain walls, which increase dissipative losses and reduce Qm. In this study, this longstanding trade-off is overcome by introducing defect dipoles (via Mn doping) into the quadruple point (QP) composition of the lead-free Ba(Sn, Ti)O3 system. The resultant 0.5%Mn-doped Ba(Sn0.11Ti0.89)O3 (BST-0.5%Mn) ceramic exhibits a high d33 value of 710 pC/N and high Qm value of 929, while the BST-1%Mn ceramic achieves a d33 value of 614 pC/N and Qm value of 1138. These values represent a 10-fold increase in Qm and 1.6-fold increase in d33 for BST-0.5%Mn, compared to those for undoped BST. High-resolution scanning transmission electron microscopy and phase-field simulations reveal that the enhanced d33 and Qm are attributable to the coexistence of multiple phases of QPs with symmetry-conforming defect dipoles, challenging the long-held notion of physical incompatibility between high d33 and high Qm. These findings offer a pathway for designing eco-friendly piezoelectric materials with unprecedented performance, paving the way for sustainable and efficient high-power applications.
| 源语言 | 英语 |
|---|---|
| 文章编号 | 2419325 |
| 期刊 | Advanced Materials |
| 卷 | 37 |
| 期 | 27 |
| DOI | |
| 出版状态 | 已出版 - 10 7月 2025 |
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