悬臂梁
小型化
微电子机械系统
有限元法
电容感应
灵敏度(控制系统)
材料科学
模数
弹簧(装置)
杨氏模量
加速度计
声学
结构工程
电子工程
纳米技术
复合材料
电气工程
物理
工程类
量子力学
作者
S Watanabe,Tomoyuki Kurioka,Chun‐Yi Chen,Tso‐Fu Mark Chang,Akira Onishi,Parthojit Chakraborty,Katsuyuki Machida,Hiroyuki Ito,Yoshihiro Miyake,Masato Sone
标识
DOI:10.1016/j.mne.2024.100249
摘要
Gold-based micro-electro-mechanical-systems (Au-MEMS) capacitive accelerometers can simultaneously realize high sensitivity and miniaturization because of the high mass density of Au. In order to further improve the sensitivity of the Au-MEMS capacitive accelerometers, Young's modulus of the cantilever-like spring part connected to the movable component is a key parameter. Considering the size effect in the mechanical property of metallic materials on micro-scale, the design of the spring part is expected to reflect their Young's modulus; that is, effective Young's modulus (Eeff). In this study, we clarify effects of the structural designs of the Au-based micro-cantilevers on their Eeff by experiments and finite element analyses (FEA) simulations. The Eeff of the Au micro-cantilevers having Ti/Au multi-layered structures is evaluated by resonance frequency method, which demonstrates the key structural parameters affecting their Eeff. The FEA calculations show a consistent trend with that observed in the experimental results.
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