悬臂梁
刚度
材料科学
高定向热解石墨
弹性(物理)
弹性模量
硅
表征(材料科学)
纳米压痕
杨氏模量
接触面积
热解炭
模数
线弹性
非接触原子力显微镜
复合材料
原子力声学显微镜
基质(水族馆)
原子力显微镜
纳米技术
有限元法
石墨
导电原子力显微镜
结构工程
光电子学
化学
物理
磁力显微镜
量子力学
有机化学
工程类
地质学
热解
磁化
磁场
海洋学
作者
Wenting Wang,Wenhao Zhang,Yuhang Chen
摘要
To facilitate mechanical characterization by contact resonance atomic force microscopy (CR-AFM), a cantilever that could enable a near linear relation between CR-frequency and contact stiffness is designed. The optimized structure is fabricated through removing a rectangular slot from a conventional cantilever as a prototype, and the dimensions of the removed slot are determined by finite element simulations. We validate the target CR-characteristics on a silicon substrate with circular cavities covered by highly oriented pyrolytic graphite flakes, on which the contact stiffness can be well modeled. Elastic modulus measurements on different materials demonstrate that the linear relation provides a convenient yet accurate way to evaluate sample's elasticity. It could thus bring great convenience to various CR-AFM relevant applications such as mechanical characterization and subsurface nano-imaging. RESEARCH HIGHLIGHTS: A cantilever that could enable a near linear relation between CR-frequency and contact stiffness is designed to facilitate contact resonance atomic force microscopy. The CR-characteristics are verified on a silicon substrate with circular cavities covered by highly oriented pyrolytic graphite flakes. Elastic modulus measurements on different materials demonstrate that the linear relation provides an easy yet accurate way to evaluate sample's elasticity.
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