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涉及无铅压电材料中外在纳米畴动力学的压电驱动机制

Piezoelectric Actuation Mechanism Involving Extrinsic Nanodomain Dynamics in Lead-Free Piezoelectrics.

作者信息

Kim Sangwook, Miyauchi Ryuki, Sato Yukio, Nam Hyunwook, Fujii Ichiro, Ueno Shintaro, Kuroiwa Yoshihiro, Wada Satoshi

机构信息

Graduate School of Advanced Science and Engineering, Hiroshima University, Higashihiroshima, Hiroshima, 739-8526, Japan.

Department of Materials Science and Engineering, Graduate School of Engineering, Kyushu University, Fukuoka, 819-0395, Japan.

出版信息

Adv Mater. 2023 Mar;35(11):e2208717. doi: 10.1002/adma.202208717. Epub 2023 Feb 6.

Abstract

Piezoelectric materials play a key role in applications, while there are physically open questions. The physical origin of piezoelectricity is understood as the sum of contributions from intrinsic effects on lattice dynamics and those from extrinsic effects on ferroic-domain dynamics, but there is an incomplete understanding that all but intrinsic effects are classified as extrinsic effects. Therefore, the accurate classification of extrinsic effects is important for understanding the physical origin of piezoelectricity. In this work, high-energy synchrotron radiation X-ray diffraction is utilized to measure the response of BiFeO -BaTiO piezoelectrics and the intrinsic/extrinsic contribution to electric fields. It is found from crystal structure and intrinsic/extrinsic contribution, using the analysis involving structure refinement with various structural model and micromechanics-based calculations, that Bi -ion disordering is important for realization of piezoelectricity and nanodomains. Here, an extrinsic effect on the rearrangement of nanodomains is suggested. The nanodomains, which are formed by the locally distorted structure around the A-site by Bi-ion disordering, can significantly deform the material in the BiFeO -BaTiO system, which contributes to the piezoelectric actuation mechanism apart from the extrinsic effect on ferroic-domain dynamics. Bi-ion disordering plays an important role in realizing piezoelectricity and nanodomains and can provide essential material design clues to develop next-generation Bi-based lead-free piezoelectric ceramics.

摘要

压电材料在应用中起着关键作用,然而在物理方面仍存在一些未解决的问题。压电性的物理起源被理解为晶格动力学的本征效应贡献与铁电畴动力学的非本征效应贡献之和,但除本征效应外的所有效应都被归类为非本征效应,这种理解并不完整。因此,准确分类非本征效应对于理解压电性的物理起源很重要。在这项工作中,利用高能同步辐射X射线衍射来测量BiFeO₃ -BaTiO₃压电体的响应以及电场的本征/非本征贡献。通过晶体结构以及本征/非本征贡献,使用涉及各种结构模型的结构精修和基于微观力学的计算分析发现,Bi离子无序对于实现压电性和纳米畴很重要。在此,提出了一种对纳米畴重排的非本征效应。由Bi离子无序导致的A位周围局部畸变结构形成的纳米畴,能够使BiFeO₃ -BaTiO₃体系中的材料发生显著变形,这除了对铁电畴动力学的非本征效应外,还对压电驱动机制有贡献。Bi离子无序在实现压电性和纳米畴方面起着重要作用,并且能够为开发下一代铋基无铅压电陶瓷提供重要的材料设计线索。

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