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Quantitative analytical atomic force microscopy: a cantilever reference device for easy and accurate AFM spring-constant calibration

机译:定量分析原子力显微镜:悬臂参考装置,可轻松,准确地进行AFM弹簧常数校准

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Calibration of atomic force microscope (AFM) cantilevers is necessary for the measurement of nanonewton and piconewton forces, which are critical to analytical applications of AFM in the analysis of polymer surfaces, biological structures and organic molecules. We have developed a compact and easy-to-use reference artefact for this calibration by bulk micromachining of silicon, which we call a cantilever microfabricated array of reference springs (C-MARS). Two separate reference cantilever structures, each nominally 3 μm thick, are fabricated from a single crystal silicon membrane. A binary code of surface oxide squares (easily visible in light, electron and atomic force microscopy) makes it easy to locate the position of the AFM tip along the length of the cantilevers. Uncertainty in location is the main source of error when calibrating an AFM using reference cantilevers, especially for those having spring constants greater than around 10 N m~(-1). This error is effectively eliminated in our new design. The C-MARS device spans the range of spring constants from 25 N m~(-1) down to 0.03 N m~(-1) important in AFM, allowing almost any contact-mode AFM cantilever to be calibrated easily and rapidly.
机译:原子力显微镜(AFM)悬臂的校准对于纳米牛顿力和皮尼微顿力的测量是必要的,这对于AFM在聚合物表面,生物结构和有机分子分析中的分析应用至关重要。我们已经通过硅的批量微加工开发了一种紧凑且易于使用的参考文物,用于此校准,我们将其称为参考弹簧的悬臂微加工阵列(C-MARS)。由单晶硅膜制成两个独立的参考悬臂结构,每个结构的标称厚度为3μm。表面氧化物方块的二进制代码(在光,电子和原子力显微镜下很容易看到)使沿着悬臂的长度轻松定位AFM尖端的位置。使用基准悬臂梁校准AFM时,位置不确定性是误差的主要来源,尤其是对于那些弹簧常数大于10 N m〜(-1)的弹簧。在我们的新设计中,该错误已得到有效消除。 C-MARS器件的弹簧常数范围从25 N m〜(-1)到0.03 N m〜(-1),这对AFM至关重要,因此几乎所有接触模式的AFM悬臂都可以轻松,快速地进行校准。

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