Zhao Changhao, Benčan Andreja, Bohnen Matthias, Zhuo Fangping, Ma Xiaolong, Dražić Goran, Müller Ralf, Li Shengtao, Koruza Jurij, Rödel Jürgen
State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an, PR China.
Department of Materials and Earth Sciences, Technical University of Darmstadt, Darmstadt, Germany.
Nat Commun. 2024 Nov 28;15(1):10327. doi: 10.1038/s41467-024-54230-0.
Precipitation hardening has been recently validated as a new mechanism for domain wall pinning and mechanical loss reduction in piezoelectrics. While anisometric precipitates have high pinning strengths, there is limited knowledge about the electrical anisotropy of the precipitation-hardened piezoceramics. In the present work, we successfully orient the precipitates in LiNaNbO piezoceramics by applying a uniaxial stress during the aging and studied its electrical anisotropy. Predicted by mechanical simulation and verified by transmission electron microscopy, it is demonstrated that the precipitate variant with its long axis perpendicular to the applied stress is energetically favored. The electrical anisotropy of the stress-assisted aged LiNaNbO is studied by applying electrical fields parallel or perpendicular to the stress axis. The domain wall contribution to permittivity is found to vary by more than a factor of two depending on orientation. In addition, the domain walls are more difficult to be activated by increasing the temperature when the electric field is perpendicular to the stress axis. Our work highlights the precipitate variant selection induced by stress-assisted aging and the related electrical anisotropy in piezoceramics. This technique enables the precipitate orientation in piezoceramics and the utilization of its anisotropy, providing fundamental insight into precipitate-domain-wall interactions and setting the ground for leveraging precipitation hardening effect in piezoceramics.
沉淀硬化最近被确认为一种用于铁电体中畴壁钉扎和降低机械损耗的新机制。虽然各向异性沉淀相具有较高的钉扎强度,但关于沉淀硬化压电陶瓷的电各向异性的了解却很有限。在本工作中,我们通过在时效过程中施加单轴应力成功地使LiNaNbO压电陶瓷中的沉淀相取向,并研究了其电各向异性。通过力学模拟预测并经透射电子显微镜验证,结果表明长轴垂直于外加应力的沉淀相变体在能量上更有利。通过施加平行或垂直于应力轴的电场,研究了应力辅助时效LiNaNbO的电各向异性。发现畴壁对介电常数的贡献因取向不同而变化超过两倍。此外,当电场垂直于应力轴时,通过升高温度激活畴壁变得更加困难。我们的工作突出了应力辅助时效诱导的沉淀相变体选择以及压电陶瓷中相关的电各向异性。该技术能够实现压电陶瓷中沉淀相的取向及其各向异性的利用,为沉淀相 - 畴壁相互作用提供了基本认识,并为利用压电陶瓷中的沉淀硬化效应奠定了基础。