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首页> 外文期刊>Philosophical Magazine, A. Physics of condensed matter, defects and mechanical properties >Mapping surface elastic properties of stiff and compliant materials on the nanoscale using ultrasonic force microscopy
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Mapping surface elastic properties of stiff and compliant materials on the nanoscale using ultrasonic force microscopy

机译:使用超声力显微镜在纳米尺度上绘制刚性和顺应性材料的表面弹性特性

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摘要

The increasing production of nano-devices and nano-composite materials has prompted the development of new instruments to probe smaller and smaller volumes. Regarding mechanical properties in particular, modified atomic force microscopes using force modulation at frequencies below the cantilever resonance have been successfully employed to investigate relatively compliant materials such as bio-materials and polymers but have shown limitations to highly stiff materials. The alternative approach of ultrasonic force microscopy (UFM) uses sample vibration at frequencies far above the cantilever primary resonance, exploiting the inertial stiffness of an atomic force microscopy cantilever and detection of ultrasonic vibration via nonlinearity of the tip-surface force interaction. In this paper we demonstrate that UFM can discriminate elastic properties of materials ranging from quite stiff to relatively compliant with a lateral resolution of a few nanometres and with high sensitivity to the elastic modulus. Furthermore a phenomenon of ultrasonically induced friction reduction permits imaging of fragile samples otherwise swept away in conventional contact mode atomic force microscopes. The possible influence of adhesive properties also has been analysed and criteria for distinguishing elastic and adhesive contributions have been established. We also explore another promising application of UFM for detection of nanoscale subsurface delamination. [References: 50]
机译:纳米器件和纳米复合材料的产量不断增长,促使开发新的仪器以探测越来越小的体积。特别地,关于机械性能,已经成功地采用了在低于悬臂共振的频率下使用力调制的改进的原子力显微镜来研究相对顺应的材料,例如生物材料和聚合物,但是已经显示出对高刚性材料的局限性。超声力显微镜(UFM)的另一种方法是在远高于悬臂主共振的频率下使用样品振动,利用原子力显微镜悬臂的惯性刚度,并通过尖端-表面力相互作用的非线性来检测超声振动。在本文中,我们证明了UFM可以区分材料的弹性特性,从相当硬的到相对柔和的,横向分辨率只有几纳米,并且对弹性模量敏感。此外,超声波引起的摩擦减小现象允许对易碎样品进行成像,否则将在常规接触模式原子力显微镜中将其扫走。还分析了胶粘剂性能的可能影响,并建立了区分弹性和胶粘剂贡献的标准。我们还探索了UFM在纳米级次表面脱层检测中另一个有希望的应用。 [参考:50]

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