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PHASE FIELD MODELING OF FERROELECTRIC DOMAIN WALL INTERACTIONS WITH CHARGE DEFECTS

机译:电荷缺陷的铁电畴壁相互作用的相现场建模

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The overall objective of this work is to develop a theoretical model that can track the evolution of the domain structures in ferroelectric crystals, which are responsible for the non-linear electromechanical behavior of these materials. To this end, a continuum thermodynamics framework is devised, and the theory falls into the class of phase-field or diffuse-interface modeling approaches. Here a set of micro-forces and governing balance laws are postulated and applied within the second law of thermodynamics to identify the appropriate material constitutive relationships. The approach is shown to yield the commonly accepted Ginzburg-Landau equation for the evolution of the polarization order parameter. Within the theory a form for the free energy is postulated that can be applied to fit the general elastic, piezoelectric and dielectric properties of a ferroelectric material near its spontaneously polarized state. Thereafter, a principle of virtual work is specified for the theory and is implemented to devise a finite element formulation. The theory and numerical methods are used to investigate the interactions of 180° and 90° domain walls with an array of charge defects and to determine the electromechanical pinning strength of the array on the walls.
机译:这项工作的总体目标是开发一种理论模型,可以跟踪铁电晶体中域结构的演变,这负责这些材料的非线性机电行为。为此,设计了一个连续的热力学框架,该理论落入了阶段场或漫射界面建模方法的类别。在这里,一组微型和管理平衡法被假设和应用在热力学的第二律法中,以确定适当的材料本构造关系。该方法被示出为产生常见的Ginzburg-Landau方程,用于偏振顺序参数的演变。在理论内,假设可自由能的形式,其可以应用于将铁电材料的一般弹性,压电和介电特性置于其自发性极化状态附近。此后,为该理论指定了虚拟作品的原理,并被实施为设计有限元配方。该理论和数值方法用于研究180°和90°域壁的相互作用,其阵列电荷缺陷并确定墙壁上的阵列的机电钉扎强度。

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