论文标题

铁电材料中局部非线性行为的自动实验

Automated Experiments of Local Non-linear Behavior in Ferroelectric Materials

论文作者

Liu, Yongtao, Kelley, Kyle P., Vasudevan, Rama K., Zhu, Wanlin, Hayden, John, Maria, Jon-Paul, Funakubo, Hiroshi, Ziatdinov, Maxim A., Trolier-McKinstry, Susan, Kalinin, Sergei V.

论文摘要

我们在多模式成像中开发并实施了自动化实验,以探测复杂材料中的结构,化学和功能行为,并阐明控制装置功能的主要物理机制。在这里,探索了压电增强力显微镜(PFM)中非线性机电响应的出现。 PFM中的非线性响应可以源自多种机制,包括通常由域结构控制的内在材料响应,影响尖端表面连接处的机械现象的表面形象,以及可能存在表面污染物的存在。使用自动实验来探测模型铁电铅(PTO)和铁电AL0.93B0.07N膜中非线性行为的起源,发现PTO在A/C域壁上显示不对称的非线性行为,并在C/C/C/C/C Domain围绕C/C/C Domain围绕宽阔的高非线性响应区域显示。相反,对于AL0.93B0.07N,良好的区域显示出高线性压电响应,与低的非线性响应和多个区域的低线性反应和多域的区域配对,表明线性响应较低和高非线性响应。我们表明,在深内核学习中制定了不同的探索策略,因为替代假设可以建立非线性行为背后的占主导物理机制,这表明这种方法自动化实验可以潜在地识别竞争物理机制之间的识别。该技术也可以扩展到电子,探针和化学成像。

We develop and implement an automated experiment in multimodal imaging to probe structural, chemical, and functional behaviors in complex materials and elucidate the dominant physical mechanisms that control device function. Here the emergence of non-linear electromechanical responses in piezoresponse force microscopy (PFM) is explored. Non-linear responses in PFM can originate from multiple mechanisms, including intrinsic material responses often controlled by domain structure, surface topography that affects the mechanical phenomena at the tip-surface junction, and, potentially, the presence of surface contaminants. Using an automated experiment to probe the origins of non-linear behavior in model ferroelectric lead titanate (PTO) and ferroelectric Al0.93B0.07N films, it was found that PTO showed asymmetric nonlinear behavior across a/c domain walls and a broadened high nonlinear response region around c/c domain walls. In contrast, for Al0.93B0.07N, well-poled regions showed high linear piezoelectric responses paired with low non-linear responses and regions that were multidomain indicated low linear responses and high nonlinear responses. We show that formulating dissimilar exploration strategies in deep kernel learning as alternative hypotheses allows for establishing the preponderant physical mechanisms behind the non-linear behaviors, suggesting that this approach automated experiments can potentially discern between competing physical mechanisms. This technique can also be extended to electron, probe, and chemical imaging.

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