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The effect of set point ratio and surface Young’s modulus on maximum tapping forces in fluid tapping mode atomic force microscopy

机译:流体攻丝模式原子力显微镜中设定点比率和表面杨氏模量对最大攻丝力的影响

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There is great interest in using proximal probe techniques to simultaneously image and measure physical properties of surfaces with nanoscale spatial resolution. In this regard, there have been recent innovations in generating time-resolved force interaction between the tip and surface during regular operation of tapping mode atomic force microscopy (TMAFM). These tip/sample forces can be used to measure physical material properties of surface in an analogous fashion to the well-established static force curve experiment. Since its inception, it has been recognized that operation of TMAFM in fluids differs significantly from that in air, with one of the major differences manifested in the quality factor (Q) of the cantilever. In air, Q is normally on the order of 200–400, whereas in fluids, it is of the order of approximately 1–5. In this study, we explore the impact of imaging parameters, i.e., set point ratio and free cantilever oscillation amplitude, on time varying tip-sample force interactions in fluid TMAFM via simulation and experiment. The numerical AFM model contains a feedback loop, allowing for the simulation of the entire scanning process. In this way, we explore the impact of varying the Young’s modulus of the surface on the maximum tapping force.
机译:使用近端探针技术以纳米级空间分辨率同时成像和测量表面的物理特性引起了极大的兴趣。在这方面,最近有一些创新,可以在敲击模式原子力显微镜(TMAFM)的常规操作过程中,在尖端和表面之间产生时间分辨的力相互作用。这些尖端/样本力可用于以与公认的静态力曲线实验类似的方式测量表面的物理材料属性。自成立以来,人们已经认识到,TMAFM在液体中的操作与在空气中的操作有显着差异,其中主要的差异之一是悬臂梁的品质因数(Q)。在空气中,Q通常约为200–400,而在液体中,Q约为1–5。在这项研究中,我们通过仿真和实验探索了成像参数(即设定点比率和自由悬臂振荡幅度)对流体TMAFM中随时间变化的尖端-样本力相互作用的影响。数值AFM模型包含一个反馈回路,可以模拟整个扫描过程。通过这种方式,我们探索了改变表面的杨氏模量对最大敲击力的影响。

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  • 来源
    《Journal of Applied Physics》 |2010年第4期|共页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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