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Computational study of textured ferroelectric polycrystals: Dielectric and piezoelectric properties of template-matrix composites

机译:织构铁电多晶的计算研究:模板基复合材料的介电和压电性能

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摘要

Quantitative relationships between processing, microstructure, and properties in textured ferroelectric polycrystals and the underlying responsible mechanisms are investigated by phase field modeling and computer simulation. This study focuses on three important aspects of textured ferroelectric ceramics: (ⅰ) grain microstructure evolution during templated grain growth processing, (ⅱ) crystallographic texture development as a function of volume fraction and seed size of the templates, and (ⅲ) dielectric and piezoelectric properties of the obtained template-matrix composites of textured polycrystals. Findings on the third aspect are presented here, while an accompanying paper of this work reports findings on the first two aspects. In this paper, the competing effects of crystallographic texture and template seed volume fraction on the dielectric and piezoelectric properties of ferroelectric polycrystals are investigated. The phase field model of ferroelectric composites consisting of template seeds embedded in matrix grains is developed to simulate domain evolution, polarization-electric field (P-E), and strain-electric field (ε-E) hysteresis loops. The coercive field, remnant polarization, dielectric permittivity, piezoelectric coefficient, and dissipation factor are studied as a function of grain texture and template seed volume fraction. It is found that, while crystallographic texture significantly improves the polycrystal properties towards those of single crystals, a higher volume fraction of template seeds tends to decrease the electromechanical properties, thus canceling the advantage of ferroelectric polycrystals textured by templated grain growth processing. This competing detrimental effect is shown to arise from the composite effect, where the template phase possesses material properties inferior to the matrix phase, causing mechanical clamping and charge accumulation at inter-phase interfaces between matrix and template inclusions. The computational results are compared with complementary experiments, where good agreement is obtained.
机译:通过相场建模和计算机仿真研究了织构铁电多晶中加工,微观结构和性能之间的定量关系以及潜在的作用机理。这项研究集中在织构铁电陶瓷的三个重要方面:(ⅰ)模板化晶粒生长过程中的晶粒微观结构演变;(ⅱ)晶体学织构发展与模板的体积分数和晶种大小的关系;以及(ⅲ)介电和压电织构多晶模板-基质复合材料的性能这里介绍了第三方面的发现,而该工作的随附论文报告了前两个方面的发现。本文研究了晶体织构和模板晶种体积分数对铁电多晶体介电和压电性能的竞争影响。建立了由嵌入基体晶粒中的模板种子组成的铁电复合材料的相场模型,以模拟磁畴演化,极化电场(P-E)和应变电场(ε-E)磁滞回线。研究了矫顽场,剩余极化,介电常数,压电系数和耗散因数与晶粒纹理和模板种子体积分数的关系。已经发现,虽然晶体织构明显地改善了单晶晶体的多晶性能,但模板晶种的较高体积分数往往会降低机电性能,从而抵消了通过模板晶粒生长工艺织构的铁电多晶的优势。该竞争性有害作用显示为源自复合效应,其中模板相具有劣于基质相的材料性能,从而导致机械夹持和电荷积聚在基质和模板夹杂物之间的相间界面处。将计算结果与补充实验进行比较,可以得出很好的一致性。

著录项

  • 来源
    《Journal of Applied Physics》 |2017年第2期|024101.1-024101.11|共11页
  • 作者单位

    Department of Materials Science and Engineering, Michigan Technological University, Houghton, Michigan 49931, USA;

    Bio-inspired Materials and Devices Laboratory (BMDL), Center for Energy Harvesting Materials and Systems (CEHMS), Virginia Tech, Blacksburg, Virginia 24061, USA;

    Bio-inspired Materials and Devices Laboratory (BMDL), Center for Energy Harvesting Materials and Systems (CEHMS), Virginia Tech, Blacksburg, Virginia 24061, USA;

    Department of Materials Science and Engineering, Michigan Technological University, Houghton, Michigan 49931, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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