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Frequency Function in Atomic Force Microscopy Applied to a Liquid Environment

机译:原子力显微镜中的频率函数应用于液体环境

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摘要

Scanning specimens in liquids using commercial atomic force microscopy (AFM) is very time-consuming due to the necessary try-and-error iteration for determining appropriate triggering frequencies and probes. In addition, the iteration easily contaminates the AFM tip and damages the samples, which consumes probes. One reason for this could be inaccuracy in the resonant frequency in the feedback system setup. This paper proposes a frequency function which varies with the tip-sample separation, and it helps to improve the frequency shift in the current feedback system of commercial AFMs. The frequency function is a closed-form equation, which allows for easy calculation, as confirmed by experimental data. It comprises three physical effects: the quasi-static equilibrium condition, the atomic forces gradient effect, and hydrodynamic load effect. While each of these has previously been developed in separate studies, this is the first time their combination has been used to represent the complete frequency phenomenon. To avoid “jump to contact” issues, experiments often use probes with relatively stiffer cantilevers, which inevitably reduce the force sensitivity in sensing low atomic forces. The proposed frequency function can also predict jump to contact behavior and, thus, the probe sensitivity could be increased and soft probes could be widely used. Additionally, various tip height behaviors coupling with the atomic forces gradient and hydrodynamic effects are discussed in the context of carbon nanotube probes.
机译:使用商业原子力显微镜(AFM)扫描液体中的标本非常耗时,因为必须进行反复尝试才能确定合适的触发频率和探针。此外,该迭代很容易污染AFM尖端并损坏样品,这会消耗探针。原因之一可能是反馈系统设置中的谐振频率不准确。本文提出了一种随尖端样本分离而变化的频率函数,它有助于改善商用AFM电流反馈系统中的频率偏移。频率函数是一个封闭形式的方程式,实验数据证实了该方程式易于计算。它包括三个物理效应:准静态平衡条件,原子力梯度效应和流体动力载荷效应。尽管每种方法以前都是在单独的研究中开发的,但这是它们的组合第一次用于代表完整的频率现象。为了避免“跳到接触”的问题,实验中经常使用具有相对较硬悬臂的探针,这不可避免地降低了感应低原子力时的力敏感性。提出的频率函数还可以预测接触行为的跳跃,因此,可以提高探针灵敏度,并可以广泛使用软探针。另外,在碳纳米管探针的背景下讨论了与原子力梯度和流体动力效应相关的各种尖端高度行为。

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