钛酸铋钠PI015的织构加工、活性模板晶粒生长和电性能关系

C. Diantonio, M. Winter, M. Rodriguez, P. Yang, G. Burns, T. Chavez, A. Blea
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摘要

由于努力减少含铅成分,无铅压电陶瓷成分的研究最近获得了越来越多的兴趣。目前使用最广泛的压电/铁电陶瓷材料,包括用于军事应用的专用陶瓷(例如声纳),由PbTiO3-PbZrO3(即pzt系统)组成。集成一种能够与铅基组合物的性能相竞争或超越的无铅铁电材料的加工策略已成为当务之急。这项工作考察了通过织构和反应模板晶粒生长来选择性地设计多晶陶瓷微观结构的最佳加工参数的发展。介绍了这些参数如何影响钛酸铋钠基组合物的机电性能。所有陶瓷材料的最终性能都受到用于构建大块陶瓷部件的加工步骤和成型技术的高度影响。结构改性陶瓷组合物最近表现出增强的性能,这取决于系统,匹配甚至超过了最佳改性铅基组合物。在这项工作中,我们报告了织构诱导成形工艺与反应模板晶粒生长相结合的发展和使用,以生产晶粒取向的多晶体陶瓷。将介绍热分析、x射线衍射表征、微观结构立体学以及介电和机电性能。加工空间的特征和映射,以推动实现最大的电气性能,这一无铅系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Textured processing, reactive templated grain growth, and electrical property relationships for sodium bismuth titanate PI015
The investigation of lead-free piezoelectric ceramic compositions has recently gained an increased level of interest due to the efforts to reduce lead based components. The most widely used piezoelectric/ferroelectric ceramic material today, including specialized ceramics for military applications (ex. sonar), consists of PbTiO3-PbZrO3 (i.e. PZT-system). It has become imperative to integrate a processing strategy with a lead-free ferroelectric material capable of competing with or surpassing the properties of lead-based compositions. This work examines the development of optimal processing parameters through texturing and reactive templated grain growth to selectively engineer a polycrystalline ceramic microstructure. It presents how these parameters can affect the electro-mechanical properties for a sodium bismuth titanate based composition. The final properties for all ceramic materials are highly influenced by the processing steps and forming techniques used to construct the bulk ceramic component. Texturally modified ceramic compositions have recently exhibited enhanced properties that, depending on the system, match and even surpass those of an optimum modified lead-based composition. In this work we report on the development and use of a texture induced forming process combined with reactive templated grain growth to produce grain-oriented polycrystalline bulk ceramics. Thermal analysis, x-ray diffraction characterization, microstructure stereology and the dielectric and electromechanical performance will be presented. A processing space has been characterized and mapped in order to drive towards achieving maximized electrical performance for this lead-free system.
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