首页> 外文会议>ASME international design engineering technical conferences and computers and information in engineering conference 2012 >NON-LINEAR FREQUENCY RESPONSE OF ATOMIC FORCE MICROSCOPE CANTILEVERS AT THE SOLID-LIQUID INTERFACE
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NON-LINEAR FREQUENCY RESPONSE OF ATOMIC FORCE MICROSCOPE CANTILEVERS AT THE SOLID-LIQUID INTERFACE

机译:固液界面原子力微悬臂梁的非线性频率响应

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One significant advantage of atomic force microscopy (AFM) over other microscopy methods is its ability to characterize surfaces in liquid environments. However, operation in liquid is complicated by the large hydrodynamic loading, which leads to low quality factors, and in turn leads to many changes in the dynamics as opposed to air/vacuum environments. A thorough understanding of the dynamics is necessary for properly interpreting data from experiments. In this work, we study the non-linear dynamics of AFM micro-cantilevers interacting with hard surfaces in liquids. In comparison to prior works that have mostly examined the dynamics at a single drive frequency, we examine the full nonlinear frequency response. Two important results are highlighted. First, in addition to the primary resonance, there are also superharmonic resonances, which can distort tapping mode approach curves. Secondly, we point out that the layering (hydration forces) of liquid molecules at the solid-liquid interface, traditionally detected using small amplitude (linear) AFM, in fact has a significant effect on the nonlinear response. These results are shown by experiments and examined analytically. The effects of parameters such as cantilever stiffness and quality factors are studied using numerical simulation.
机译:原子力显微镜(AFM)相对于其他显微镜方法的一大优势是其能够表征液体环境中的表面。但是,在液体中的操作由于较大的流体动力负荷而变得复杂,这导致了低质量因数,进而导致了与空气/真空环境相反的动力学变化。要正确解释实验数据,必须全面了解动力学。在这项工作中,我们研究了AFM微悬臂与液体中坚硬表面相互作用的非线性动力学。与主要研究单个驱动频率的动力学的现有技术相比,我们研究了完整的非线性频率响应。突出显示了两个重要结果。首先,除了主共振以外,还存在超谐波共振,这会使扭曲抽头模式逼近曲线变形。其次,我们指出,传统上使用小幅度(线性)原子力显微镜检测的固液界面上液体分子的分层(水合力)实际上对非线性响应具有重要影响。这些结果通过实验显示并进行了分析检查。使用数值模拟研究了诸如悬臂刚度和品质因数等参数的影响。

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