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首页> 外文期刊>Journal of Physics. Condensed Matter >On the mechanisms of tip-force induced switching in ferroelectric thin films: the crossover of depolarization, shear strain and flexoelectricity
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On the mechanisms of tip-force induced switching in ferroelectric thin films: the crossover of depolarization, shear strain and flexoelectricity

机译:关于铁电薄膜尖力诱导切换的机制:去极化,剪切应变和柔性电性的交叉

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摘要

The recent observation of mechanical switching of ferroelectric polarization has placed the mechanical manipulation of ferroelectrics on an equal footing with the conventional electrical manipulation. However, discussions on the exact switching mechanisms due to mechanical loads are ongoing for the complexity in experimental situations. In this work, based on continuum mechanical and thermodynamic modeling and simulation, we analyze the mechanisms of tip-force induced switching in ferroelectric thin films. The roles of depolarization, shear strain and flexoelectricity in mechanical switching, both in normal and sliding loading modes, are separated out and the switching characteristics are analyzed. The depolarization field in the film is demonstrated to enable bidirectional switching. The coupling between shear strain and polarization components is shown to be important in the sliding loading mode. A great influence of flexoelectricity-modified polarization boundary condition on the switching process is revealed. The previous speculation that the switching process experiences an intermediate paraelectric phase is proved. The regulation of loading force, misfit strain, temperature and film thickness on the switching are further given for each mechanism. Taking all of the three mechanisms into account, we present the phase diagrams of mechanical switching for films in an initial upward or downward polarization state. The revealed characteristics of various switching mechanisms should provide useful guidelines for their verification in experiments, and the tunability of the switching by various influencing factors is instructive for the design and optimization of ferroelectric devices via mechanical engineering.
机译:近期铁电偏振机械切换的观察使得铁电器的机械操纵与传统电气操纵相等脚踏。然而,对由于机械负载引起的确切切换机制的讨论正在进行实验情况中的复杂性。在这项工作中,基于连续体的机械和热力学建模和仿真,我们分析了铁电薄膜中的尖端力诱导的切换机制。分离出在正常和滑动加载模式下,在机械开关中的去极化,剪切应变和柔性性的作用,分析了切换特性。对膜中的去极化场进行说明以实现双向切换。剪切应变和偏振分量之间的耦合显示在滑动加载模式中是重要的。揭示了柔性电性改性偏振边界条件对开关过程的影响。先前的猜测,切换过程经历中间电阶段的经历。对每个机制进一步给出了开关上的装载力,错配,温度和膜厚度的调节。考虑到所有三种机制,我们介绍了初始向上或向下偏振状态的薄膜的机械切换的相图。各种切换机制的揭示特性应该提供有用的实验验证指南,并且各种影响因素的切换的可调性是通过机械工程设计和优化铁电器件的指导性。

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