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Simultaneous elastic and electromechanical imaging by scanning probe microscopy: Theory and applications to ferroelectric and biological materials

机译:通过扫描探针显微镜同时进行弹性和机电成像:铁电和生物材料的理论和应用

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摘要

An approach for combined imaging of elastic and electromechanical properties of materials, referred to as piezoacoustic scanning probe microscopy (PA-SPM), is presented. Applicability of this technique for elastic and electromechanical imaging with nanoscale resolution in such dissimilar materials as ferroelectrics and biological tissues is demonstrated. The PA-SPM signal formation is analyzed based on the theory of nanoelectromechanics of piezoelectric indentation and signal sensitivity to materials properties and imaging conditions. It is shown that simultaneous measurements of local indentation stiffness and indentation piezocoefficient provide the most complete description of the local electroelastic properties for transversally isotropic materials, thus making piezoacoustic SPM a comprehensive imaging and analysis tool. The contrast formation mechanism in the low frequency regime is described in terms of tip-surface contact mechanics. Signal generation volumes for electromechanical and elastic signals are determined and relative sensitivity of piezoresponse force microscopy (PFM) and atomic force acoustic microscopy (AFAM) for topographic cross-talk is established. (c) 2005 American Vacuum Society.
机译:提出了一种对材料的弹性和机电性能进行组合成像的方法,称为压电声学扫描探针显微镜(PA-SPM)。证明了该技术在诸如铁电体和生物组织之类的不同材料中以纳米级分辨率进行弹性和机电成像的适用性。基于压电压痕的纳米机电理论以及对材料特性和成像条件的信号敏感性,对PA-SPM信号形成进行了分析。结果表明,同时测量局部压痕刚度和压痕压电系数可以最完整地描述横向各向同性材料的局部电弹性,从而使压电声SPM成为全面的成像和分析工具。根据尖端表面接触力学描述了低频状态下的造影剂形成机理。确定了机电信号和弹性信号的信号生成量,并建立了压电响应力显微镜(PFM)和原子力声显微镜(AFAM)用于地形干扰的相对灵敏度。 (c)2005年美国真空学会。

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