梯度和多层铁电体的建模:介电和压电响应

S. Alpay
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引用次数: 0

摘要

作为可调谐微波器件和压电致动器/传感器中的有源元件,梯度铁电体和铁电多层体受到了极大的关注。有许多实验研究表明,这些材料有许多特殊的性质,不能用组成异质结构的各个层的简单串联来描述。热力学分析表明,铁电多层通过内部弹性场、电场和机电场相互作用,耦合的“强度”可以用朗道相变理论、弹性理论和静电原理定量描述。除了空间反演对称性的破坏会导致热力学势的不对称外,模型还表明,层间的静电耦合会导致铁电性在铁电-准电双层的临界准电层厚度处受到抑制。这种双分子层预计具有巨大的介电/压电响应,类似于均匀铁电体在此临界厚度的居里-魏斯温度附近的异常。这种行为具有相变的特征。层的相对厚度可以用作双层、多层和渐变异质结构的设计参数。我们给出了BaTiO3/SrTiO3双分子层以及BaTiO3-SrTiO3 (BST)和PbZrO3-PbTiO3 (PZT)梯度化合物的介电和压电响应的数值结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of graded and multilayer ferroelectrics: Dielectric and piezoelectric response
Graded ferroelectrics and ferroelectric multilayers have received great interest as active elements in tunable microwave devices and piezoelectric actuators/sensors. There have been a number of experimental studies that show that these materials have many peculiar properties that cannot be described by a simple series connection of the individual layers that make up the heterostructures. A thermodynamic analysis is presented to demonstrate that ferroelectric multilayers interact through internal elastic, electrical, and electromechanical fields and the ¿strength¿ of the coupling can be quantitatively described using Landau theory of phase transformations, theory of elasticity, and principles of electrostatics. In addition to broken spatial inversion symmetry that can lead to asymmetric thermodynamic potentials, the modeling indicates that the electrostatic coupling between the layers leads to the suppression of ferroelectricity at a critical paraelectric layer thickness for ferroelectric-paraelectric bilayers. This bilayer is expected to have a colossal dielectric/piezoelectric response similar to the anomaly near Curie-Weiss temperature in homogeneous ferroelectrics at this critical thickness. This behavior has the characteristics of a ¿phase transformation.¿ The relative thicknesses of the layers can be used as a design parameter for bilayer, multilayers, and graded heterostructures. We present numerical results on the dielectric and piezoelectric response of BaTiO3/SrTiO3 bilayers, and graded BaTiO3-SrTiO3 (BST) and PbZrO3-PbTiO3 (PZT) compounds.
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