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Sensitivity of flexural and torsional vibration modes of atomic force microscope cantilevers to surface stiffness variations

机译:原子力显微镜悬臂的弯曲和扭转振动模式对表面刚度变化的敏感性

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Dynamic modes of atomic-force microscopy offer new possibilities for imaging because of the availability of the various vibrational modes of the probes. However, each mode has a different sensitivity to variations in surface stiffness. This sensitivity directly controls the image contrast. Low-stiffness cantilevers have typically been unusable for imaging of stiff materials because of the lack of sensitivity of the first flexural mode. In this paper, the sensitivities of the flexural and torsional modes are derived. Closed-form expressions are obtained for cantilevers with constant cross sections. For cantilevers with other shapes, an approximate solution is developed using the method of Rayleigh-Ritz. The interaction of the cantilever with the surface is modeled by linear springs, which restricts the results to experiments involving low-amplitude excitations. Both flexural and torsional vibration modes are considered. For given nominal values of surface and AFM probe properties, the appropriate mode for highest contrast may be predicted.
机译:原子力显微镜的动态模式为成像提供了新的可能性,因为探针具有各种振动模式。但是,每种模式对表面刚度变化的敏感性不同。此灵敏度直接控制图像对比度。由于缺乏第一弯曲模式的灵敏度,低刚度悬臂通常无法用于坚硬材料的成像。本文推导了挠曲和扭转模态的灵敏度。对于具有恒定横截面的悬臂,可获得封闭形式的表达式。对于具有其他形状的悬臂,使用Rayleigh-Ritz方法开发了一种近似解决方案。悬臂与表面的相互作用是通过线性弹簧建模的,这将结果限制在涉及低振幅激励的实验中。弯曲和扭转振动模式都被考虑。对于给定的表面和AFM探针特性标称值,可以预测出最高对比度的适当模式。

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