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Spatially resolved mapping of ferroelectric switching behavior in self-assembled multiferroic nanostructures: strain, size, and interface effects

机译:自组装多铁性纳米结构中铁电开关行为的空间分辨映射:应变,尺寸和界面效应

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Local ferroelectric polarization switching in multiferroic BiFeO3-CoFe2O4 nanostructures is studied using switching spectroscopy piezoresponse force microscopy (SS-PFM). Dynamic parameters such as the work of switching are found to vary gradually with distance from the heterostructure interfaces, while nucleation and coercive biases are uniform within the ferroelectric phase. We demonstrate that the electrostatic and elastic fields at interfaces do not affect switching and nucleation behavior. Rather, the observed evolution of switching properties is a geometric effect of the heterointerface on the signal generation volume in PFM. This implies that the heterostructures can be successfully used in devices, since interfaces do not act as preferential sites for switching. At the same time, small systematic variations of switching properties within the ferroelectric component can be ascribed to the long-range elastic and electrostatic fields in the heterostructure, which can be visualized in 2D.
机译:使用切换光谱压电响应力显微镜(SS-PFM)研究了多铁性BiFeO3-CoFe2O4纳米结构中的局部铁电极化切换。发现诸如开关功之类的动态参数随着与异质结构界面的距离而逐渐变化,而在铁电相中成核和矫顽偏置是均匀的。我们证明了界面处的静电场和弹性场不会影响开关和成核行为。而是,观察到的开关特性的演变是异质接口对PFM中信号生成量的几何影响。这意味着异质结构可以在设备中成功使用,因为接口不会充当交换的优先站点。同时,铁电元件内开关特性的细微系统变化可以归因于异质结构中的远距离弹性场和静电场,可以在2D中可视化。

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