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Aspect ratio and dimension effects on nanorod manipulation by atomic force microscope

机译:纵横比和尺寸对原子力显微镜操作纳米棒的影响

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摘要

This Letter deals with modelling of nanorod manipulation using an atomic force microscope (AFM). Widespread application of nanorods and a lack of real-time imaging in nanotechnology make process modeling necessary. This model considers three basic nano forces: Van der Waals, friction and adhesive contact force for a quantitative analysis of effective parameters. A dynamic analysis of nanorod pushing considering depression on an elastic substrate, indention between tip-nanorod and deflection along a straight path is presented. Incorporating a beam on the elastic substrate assumption, a complete model for nanorod manipulation is introduced. The model is verified using available (theoretical and experimental) results. A polystyrene nanorod is simulated and critical force and time, maximum deflection and safety factor are obtained. Aspect ratio and dimension effects are the most significant contributions of this work. Also, it is determined that the dynamic modes of micro- and nanorods are different. Despite rolling being a dominant mode in microrod manipulation, sliding is observed in nanorod pushing as the dominant dynamic mode. Results show that an increase in length causes considerable deflection and decrease in the safety factor.
机译:这封信涉及使用原子力显微镜(AFM)对纳米棒进行操纵的建模。纳米棒的广泛应用以及纳米技术中缺乏实时成像技术,使得工艺建模成为必要。该模型考虑了三个基本的纳米力:范德华力,摩擦力和粘合剂接触力,用于有效参数的定量分析。提出了纳米棒推力的动力学分析,其中考虑了在弹性基底上的凹陷,尖端-纳米节之间的压痕和沿直线路径的挠度。在弹性基底的假设下结合梁,引入了纳米棒操纵的完整模型。使用可用的(理论和实验)结果验证模型。模拟了聚苯乙烯纳米棒,并获得了临界力和时间,最大挠度和安全系数。长宽比和尺寸效果是这项工作最重要的贡献。而且,确定了微棒和纳米棒的动力学模式是不同的。尽管滚动是微棒操纵中的主要模式,但在纳米棒推动中仍观察到滑动是主要的动态模式。结果表明,长度的增加会引起较大的挠度并降低安全系数。

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