Department of Aerospace and Mechanical Engineering, University of Arizona, Tucson, AZ 85721, USA.
Nanotechnology. 2011 Apr 15;22(15):155702. doi: 10.1088/0957-4484/22/15/155702. Epub 2011 Mar 10.
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 the nanowires. However, existing mechanical characterization techniques fail to accomplish this goal due either to the lack of imaging capability of the mechanical test setup or the difficulty of individual alignment and manipulation of single nanowires for each test. In this study, nanowire specimens prepared by an electroplating technique are located on a silicon substrate with trenches. A customized atomic force microscope is located inside a scanning electron microscope (SEM) in order to establish the visibility of the nanowires, and the tip of the atomic force microscope cantilever is utilized to bend and break the nanowires. The ability to visualize the nanowires in an SEM improves the speed and accuracy of the tests. Experimentally obtained force versus bending displacement curves are fitted into existing analytical formulations to extract the mechanical properties. Experimental results reveal that nickel nanowires have significantly higher strengths than their bulk counterparts, although their elastic modulus values are comparable to bulk nickel modulus values.
介绍了一种用于表征金属纳米线力学性能的新型实验方法。准确快速地对纳米线进行力学表征需要同时对纳米线进行成像和测试。然而,现有的力学表征技术由于机械测试装置缺乏成像能力,或者由于每个测试都需要对单个纳米线进行单独的对准和操作,因此无法实现这一目标。在这项研究中,通过电镀技术制备的纳米线样品位于具有沟槽的硅衬底上。定制的原子力显微镜位于扫描电子显微镜(SEM)内部,以建立纳米线的可见度,并且原子力显微镜悬臂的尖端被用来弯曲和折断纳米线。在 SEM 中可视化纳米线的能力提高了测试的速度和准确性。将实验获得的力与弯曲位移曲线拟合到现有的分析公式中,以提取力学性能。实验结果表明,镍纳米线的强度明显高于其体相对应物,尽管它们的弹性模量值与体相镍的弹性模量值相当。