材料科学
谐振器
复合材料
梁(结构)
表征(材料科学)
纳米尺度
薄膜
灵敏度(控制系统)
模数
弹性模量
杨氏模量
悬臂梁
计量学
抗弯强度
振动
压力(语言学)
声学
光学
光电子学
纳米技术
电子工程
物理
哲学
工程类
语言学
出处
期刊:Materials
[MDPI AG]
日期:2017-07-15
卷期号:10 (7): 806-806
被引量:10
摘要
Nanoscale materials have properties that frequently differ from those of their bulk form due to the scale effect, and therefore a measurement technique that can take account of such material characteristics with high accuracy and sensitivity is required. In the present study, advanced nanomechanical metrology was developed for evaluation of elastic properties of thin-film materials. A 52 nm thick chromium (Cr) film was deposited on a high-speed micromechanical resonator using an e-beam evaporator, and the structure was excited to resonate using an ultrasonic platform. The resonant frequencies for the first and second flexural vibration modes were measured using laser interferometry, and they were compared to analytical estimation from the classical beam theory. Results show that the experimental data are in excellent agreement with the theory, within 1% of the relative error, and a mass sensitivity up to 10.5 Hz/fg was achieved. Thus, the scale effect that reduced the Young's modulus of Cr by 49.8% compared to its bulk property was correctly recognized by the proposed method.
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