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Nanomechanical Characterization of Vertical Nanopillars Using an MEMS-SPM Nano-Bending Testing Platform

机译:使用MEMS-SPM纳米弯曲测试平台的垂直纳米粒子的纳米机械表征

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摘要

Nanomechanical characterization of vertically aligned micro- and nanopillars plays an important role in quality control of pillar-based sensors and devices. A microelectromechanical system based scanning probe microscope (MEMS-SPM) has been developed for quantitative measurement of the bending stiffness of micro- and nanopillars with high aspect ratios. The MEMS-SPM exhibits large in-plane displacement with subnanometric resolution and medium probing force beyond 100 micro-Newtons. A proof-of-principle experimental setup using an MEMS-SPM prototype has been built to experimentally determine the in-plane bending stiffness of silicon nanopillars with an aspect ratio higher than 10. Comparison between the experimental results and the analytical and FEM evaluation has been demonstrated. Measurement uncertainty analysis indicates that this nano-bending system is able to determine the pillar bending stiffness with an uncertainty better than 5%, provided that the pillars’ stiffness is close to the suspending stiffness of the MEMS-SPM. The MEMS-SPM measurement setup is capable of on-chip quantitative nanomechanical characterization of pillar-like nano-objects fabricated out of different materials.
机译:垂直对齐的微型和纳米粒子的纳米力学表征在基于支柱的传感器和装置的质量控制中起着重要作用。基于微机电系统的扫描探针显微镜(MEMS-SPM)已经开发用于定量测量微观和纳米粒子的弯曲刚度,具有高纵横比。 MEMS-SPM具有大的面内位移,具有超过100微牛顿的亚域分辨率和介质探测力。已经建立了使用MEMS-SPM原型的原则上的实验设置,以实验地确定硅纳米粒子的面内弯曲刚度,其纵横比高于10。实验结果与分析和有限元评估之间的比较展示。测量不确定性分析表明,该纳米弯曲系统能够以优于5%的不确定性确定柱弯曲刚度,只要柱的刚度接近MEMS-SPM的悬浮刚度。 MEMS-SPM测量设定能够进行由不同材料制成的柱状纳米物体的片上定量纳米机械表征。

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