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首页> 外文期刊>Journal of Applied Physics >Amplitude quantification in contact-resonance-based voltage-modulated force spectroscopy
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Amplitude quantification in contact-resonance-based voltage-modulated force spectroscopy

机译:基于接触共振的电压调制力谱中的振幅量化

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摘要

Voltage-modulated force spectroscopy techniques, such as electrochemical strain microscopy and piezoresponse force microscopy, are powerful tools for characterizing electromechanical properties on the nanoscale. In order to correctly interpret the results, it is important to quantify the sample motion and to distinguish it from the electrostatic excitation of the cantilever resonance. Here, we use a detailed model to describe the cantilever dynamics in contact resonance measurements, and we compare the results with experimental values. We show how to estimate model parameters from experimental values and explain how they influence the sensitivity of the cantilever with respect to the excitation. We explain the origin of different crosstalk effects and how to identify them. We further show that different contributions to the measured signal can be distinguished by analyzing the correlation between the resonance frequency and the measured amplitude. We demonstrate this technique on two representative test samples: (i) ferroelectric periodically poled lithium niobate, and (ii) the Na~+-ion conducting soda-lime float glass. We extend our analysis to higher cantilever bending modes and show that non-local electrostatic excitation is strongly reduced in higher bending modes due to the nodes in the lever shape. Based on our analyses, we present practical guidelines for quantitative imaging.
机译:电压调制力谱技术,例如电化学应变显微镜和压电响应力显微镜,是表征纳米级机电性能的强大工具。为了正确解释结果,重要的是量化样本运动并将其与悬臂共振的静电激发区分开。在这里,我们使用一个详细的模型来描述接触共振测量中的悬臂动力学,并将结果与​​实验值进行比较。我们展示了如何根据实验值估算模型参数,并说明它们如何影响悬臂相对于激励的灵敏度。我们解释了不同串扰效应的起源以及如何识别它们。我们进一步表明,可以通过分析谐振频率和测量幅度之间的相关性来区分对测量信号的不同贡献。我们在两个代表性的测试样品上展示了该技术:(i)铁电周期性极化的铌酸锂,和(ii)传导钠离子的钠钙浮法玻璃。我们将分析扩展到较高的悬臂弯曲模式,并表明由于杠杆形状中的节点,在较高的弯曲模式中非局部静电激励会大大降低。根据我们的分析,我们提出了定量成像的实用指南。

著录项

  • 来源
    《Journal of Applied Physics 》 |2017年第6期| 065106.1-065106.11| 共11页
  • 作者单位

    Department of Chemistry, University of Marburg, Hans-Meerwein-Strasse 4, Marburg, Germany;

    Institute of Applied Physics, University of Giessen, Heinrich-Buff-Ring 16, Giessen, Germany;

    Department of Chemistry, University of Marburg, Hans-Meerwein-Strasse 4, Marburg, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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