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MECHANICAL CHARACTERIZATION OF METALLIC NANOWIRES BY USING A CUSTOMIZED ATOMIC MICROSCOPE

机译:使用定制的原子显微镜对金属纳米线进行机械表征

摘要

A new experimental method to characterize the mechanical properties of metallic nanowires is introduced. An accurate and fast mechanical characterization of nanowires requires simultaneous imaging and testing of nanowires. However, there exists no practical experimental procedure in the literature that provides a quantitative mechanical analysis and imaging of the nanowire specimens during mechanical testing. In this study, a customized atomic force microscope (AFM) is placed inside a scanning electron microscope (SEM) in order to locate the position of the nanowires. The tip of the atomic force microscope cantilever is utilized to bend and break the nanowires. The nanowires are prepared by electroplating of nickel ions into the nanoscale pores of the alumina membranes. Force versus bending displacement responses of these nanowires are measured experimentally and then compared against those of the finite element analysis and peridynamic simulations to extract their mechanical properties through an inverse approach.The average elastic modulus of nickel nanowires, which are extracted using finite element analysis and peridynamic simulations, varies between 220 GPa and 225 GPa. The elastic modulus of bulk nickel published in the literature is comparable to that of nickel nanowires. This observation agrees well with the previous findings on nanowires stating that the elastic modulus of nanowires with diameters over 100nm is similar to that of bulk counterparts. The average yield stress of nickel nanowires, which are extracted using finite element analysis and peridynamic simulations, is found to be between 3.6 GPa to 4.1 GPa. The average value of yield stress of nickel nanowires with 250nm diameter is significantly higher than that of bulk nickel. Higher yield stress of nickel nanowires observed in this study can be explained by the lower defect density of nickel nanowires when compared to their bulk counterparts.Deviation in the extracted mechanical properties is investigated by analyzing the major sources of uncertainty in the experimental procedure. The effects of the nanowire orientation, the loading position and the nanowire diameter on the mechanical test results are quantified using ANSYS simulations. Among all of these three sources of uncertainty investigated, the nanowire diameter has been found to have the most significant effect on the extracted mechanical properties.
机译:介绍了表征金属纳米线力学性能的新实验方法。纳米线的准确而快速的机械表征需要对纳米线同时进行成像和测试。然而,在文献中不存在提供在机械测试过程中对纳米线样品进行定量机械分析和成像的实用实验程序。在这项研究中,将定制的原子力显微镜(AFM)放置在扫描电子显微镜(SEM)内,以定位纳米线的位置。原子力显微镜悬臂的尖端用于弯曲和折断纳米线。通过将镍离子电镀到氧化铝膜的纳米级孔中来制备纳米线。通过实验测量这些纳米线的力与弯曲位移响应,然后与有限元分析和围动力学模拟相比较,通过逆方法提取其力学性能。镍纳米线的平均弹性模量是通过有限元分析和周边动力学模拟,介于220 GPa和225 GPa之间。文献中公开的块状镍的弹性模量与镍纳米线的弹性模量相当。该观察结果与先前关于纳米线的发现非常吻合,该发现指出直径超过100nm的纳米线的弹性模量与本体的相似。镍纳米线的平均屈服应力是在3.6 GPa至4.1 GPa之间,这是通过有限元分析和围力学模拟提取的。直径为250nm的镍纳米线的屈服应力平均值明显高于块状镍。本研究中观察到的较高的镍纳米线屈服应力可以用与纳米纳米线相比,其较低的缺陷密度来解释。通过分析实验过程中的主要不确定性来源,研究了提取的机械性能的偏差。纳米线取向,加载位置和纳米线直径对机械测试结果的影响使用ANSYS仿真进行了量化。在研究的所有这三种不确定性来源中,发现纳米线直径对提取的机械性能影响最大。

著录项

  • 作者

    Celik Emrah;

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  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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