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用于纳米结构摩擦和化学性质定量比较的可重复横向力显微镜测量。

Reproducible lateral force microscopy measurements for quantitative comparisons of the frictional and chemical properties of nanostructures.

作者信息

Such M W, Kramer D E, Hersam M C

机构信息

Department of Materials Science and Engineering, Northwestern University, 2220 Campus Drive, Evanston, IL 60208-3108, USA.

出版信息

Ultramicroscopy. 2004 May;99(2-3):189-96. doi: 10.1016/j.ultramic.2003.12.005.

Abstract

Atomic force microscopy (AFM) is a widely used technique for characterizing the topography and frictional properties of nanostructures. Inherent misalignments between the AFM cantilever and the feedback hardware lead to crosstalk between topography data and lateral force microscopy (LFM) data. Because the degree of crosstalk depends on the positioning of the cantilever, LFM and topography data of the same structure can vary from one experiment to the next. For nanostructures with large LFM contrast, errors as large as 50% in topography and LFM can be observed. This paper describes an empirical strategy for correcting this alignment error. The technique is used to characterize the frictional properties of scanning probe-induced oxide nanostructures and the hydrogen-terminated Si(111) surfaces on which they are patterned. Reproducible differences in the frictional properties of the oxide nanostructures patterned on HF-treated and NH4F-treated Si(111) surfaces are observed and attributed to the mixed-hydride versus monohydride termination of each surface. The observed frictional contrast is consistent with known differences in surface reactivity and demonstrates how LFM measurements can provide insight into the frictional and chemical properties of nanostructures

摘要

原子力显微镜(AFM)是一种广泛用于表征纳米结构形貌和摩擦特性的技术。AFM悬臂与反馈硬件之间固有的不对准会导致形貌数据和侧向力显微镜(LFM)数据之间的串扰。由于串扰程度取决于悬臂的位置,同一结构的LFM和形貌数据在不同实验中可能会有所不同。对于具有较大LFM对比度的纳米结构,在形貌和LFM中可观察到高达50%的误差。本文描述了一种校正这种对准误差的经验策略。该技术用于表征扫描探针诱导的氧化物纳米结构以及其上图案化的氢终止Si(111)表面的摩擦特性。观察到在HF处理和NH4F处理的Si(111)表面上图案化的氧化物纳米结构的摩擦特性存在可重现的差异,并归因于每个表面的混合氢化物与单氢化物终止。观察到的摩擦对比度与已知的表面反应性差异一致,并展示了LFM测量如何能够深入了解纳米结构的摩擦和化学性质。

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