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Manipulating the frequency response of small high-frequency atomic force microscope cantilevers

机译:操纵小型高频原子力显微镜悬臂的频率响应

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We study small (less than 10 mu m-long) high-frequency (greater than 1 MHz) cantilevers specially designed for visualization of biomolecular processes in high-speed atomic force microscopes. The frequency responses of the first three flexural eigenmodes are investigated for the modified geometries. It is found that the Q-factors can be significantly altered in the desired way by reengineering the cantilever geometry without affecting its main operational parameters, such as the spring constant and the resonance frequency of the first flexural eigenmode in an air environment. In addition, higher-order flexural resonances can be moved away from the fundamental resonance with these geometrical modifications. The Q-factors in liquid, on the other hand, do not show a significant difference due to high viscous damping of the medium. Regular cantilevers modified by a focused ion beam are used to demonstrate the validity of the finite element simulation model.
机译:我们研究小(不到10亩长的)高频(大于1 MHz)悬臂,专门用于在高速原子力显微镜中的生物分子过程的可视化。 研究了前三个弯曲特征模点的频率响应,用于改进的几何形状。 发现Q因子可以通过再造悬臂几何形状以所需的方式显着改变,而不影响其主要操作参数,例如空气环境中的第一弯曲特征模的弹簧常数和谐振频率。 此外,高阶弯曲谐振可以通过这些几何修改远离基本的共振。 另一方面,液体中的Q因素由于介质的高粘性阻尼而没有显示出显着的差异。 通过聚焦离子束修改的常规悬臂用于展示有限元模拟模型的有效性。

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