材料科学
有限元法
共振(粒子物理)
附加质量
蒸发
生物系统
微流控
纳米技术
复合材料
度量(数据仓库)
悬臂梁
声学
计算机科学
振动
工程类
物理
结构工程
粒子物理学
热力学
生物
数据库
作者
Arezoo Hajesfandiari,Viktor Sukhotskiy,Abdullah N. Alodhayb,Faheem Khan,Thomas Thundat,Edward P. Furlani
出处
期刊:Measurement
[Elsevier]
日期:2020-10-20
卷期号:173: 108617-108617
被引量:6
标识
DOI:10.1016/j.measurement.2020.108617
摘要
Abstract Resonating microfluidic cantilevers are used for a broad range of biochemical sensing applications where a shift in the resonance frequency is used to detect minute changes in the cantilever mass. These multifunctional microfluidic microcantilevers open up opportunities for new ultrasensitive biochemical sensors wherein the target species in a carrier fluid bind to the inner functionalized walls of microfluidic channel, thereby changing the mass and hence the resonance frequency of the system for detection. In this paper, we develop computational models that predict the change in the resonance frequency as a function of change in mass for this hollow microcantilever system. We present computational models to simulate this process and validate the models using experimental data based on the evaporation of ethenol, a commonly available volatile compound. Specifically, a computational approach is presented in two variants; a one-dimensional structural beam element model, and a three-dimensional finite element model. The numerically predicted increase in the resonance frequencies due to a decrease in ethanol mass correlates well with experimental data. The models enable the determination of proof-of-concept and the rational design of novel resonant-based microfluidic microcantilever systems.
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