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Dynamic analysis of AFM by applying Timoshenko beam theory in tapping mode and considering the impact of interaction forces in a liquid environment

机译:通过在分接模式下应用Timoshenko束理论并考虑液体环境中相互作用力的影响,对AFM进行动态分析

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In an atomic force microscope (AFM), the cantilever vibrates by excitation at a frequency near the fundamental frequency, and the changes in vibration parameters, which result from the nonlinear forces of interaction between sample and cantilever tip, can be used as a tool to reveal the properties of the sample. To properly describe the images acquired by the AFM and to approximate the properties of the investigated sample, it is essential to use analytical and numerical models that can accurately simulate the dynamics of the cantilever and sample. For short beams, the Timoshenko model seems to be very accurate. Considering the fact that short beams (cantilevers) have many applications including the imaging of biological samples in liquid environments, the use of this theory seems to be necessary. In this paper, by employing the Timoshenko beam model, the effect of rotational inertia and shear deformation has been taken into consideration. The interaction forces between sample and cantilever in liquid, ambient air, and vacuum environments are quite different in terms of magnitude and formulation, and they play a significant role in the system's dynamic response. These forces include hydrodynamic forces, electrostatic double layer force, etc. Using an accurate model for the interaction forces will improve the simulation results significantly. In this paper, the frequency response of the atomic force microscope has been investigated by applying the Timoshenko beam model and considering the forces of interaction between sample and tip in the air and liquid environments. The results indicate that the resonant frequency changes and cantilever vibration amplitude diminishes in a liquid environment compared to the air environment. The simulation results have good agreement with the experimental ones. The frequency responses for the attractive and repulsive regions in the two environments are compared and it is demonstrated that the dynamic response is highly dependent on the hydrodynamic and interaction forces in the liquid medium.
机译:在原子力显微镜(AFM)中,悬臂通过激发以接近基频的频率振动,并且由样品和悬臂尖端之间的非线性相互作用力引起的振动参数变化可以用作测量振动的工具。揭示样品的特性。为了正确描述AFM采集的图像并近似研究样品的特性,必须使用能够精确模拟悬臂和样品动力学的分析和数值模型。对于短光束,季莫申科模型似乎非常准确。考虑到短光束(悬臂)具有许多应用,包括在液体环境中对生物样品成像,这一事实似乎很有必要。在本文中,通过采用Timoshenko梁模型,考虑了旋转惯性和剪切变形的影响。在液体,环境空气和真空环境中,样品和悬臂之间的相互作用力在大小和配方方面存在很大差异,它们在系统的动态响应中起着重要作用。这些力包括流体动力,静电双层力等。为相互作用力使用准确的模型将大大改善仿真结果。在本文中,通过应用Timoshenko束模型并考虑了样品和针尖在空气和液体环境中的相互作用力,研究了原子力显微镜的频率响应。结果表明,与空气环境相比,液体环境中的共振频率变化和悬臂振动幅度减小。仿真结果与实验结果吻合良好。比较了两种环境下吸引和排斥区域的频率响应,并证明了动态响应高度依赖于液体介质中的流体动力和相互作用力。

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