亚微米悬臂梁吸附引起共振响应变化的机理模型

SPIE MOEMS-MEMS Pub Date : 2008-02-20 DOI:10.1117/12.760913
H. Sadeghian, J. Goosen, A. Bossche, F. van Keulen
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引用次数: 4

摘要

亚微米悬臂结构已经被证明是一种非常通用的传感器,在物理、化学和生物领域都有潜在的应用。亚微米悬臂传感器的基本原理是测量由于与悬臂表面结合的分子的附加质量而引起的共振频移。本文提出了一种预测分子吸附在亚微米悬臂梁上共振频移的理论模型。研究了吸附在上下表面的分子的力学性能对共振频率的影响。对于各种材料,将确定吸附层和悬臂梁之间的厚度之比,其中刚度或附加质量占主导地位。确定了吸附层厚度与悬臂梁的临界比以及吸附层与悬臂梁的刚度与密度之比。计算结果表明,增加的质量和刚度对共振性能的影响。该模型深入了解了两种相反效应的解耦,并有望用于基于刚度或质量效应的分子吸附高灵敏度谐振器的优化设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A mechanistic model for adsorption-induced change in resonance response of submicron cantilevers
Submicron cantilever structures have been demonstrated to be extremely versatile sensors and have potential applications in physics, chemistry and biology. The basic principle in submicron cantilever sensors is the measurement of the resonance frequency shift due to the added mass of the molecules bound to the cantilever surface. This paper presents a theoretical model to predict the resonance frequency shift due to molecular adsorption on submicron cantilevers. The influence of the mechanical properties of the adsorbed molecules bound to the upper and lower surface on the resonance frequency has been studied. For various materials, the ratio between the thicknesses of the adsorbed layer and the cantilever where either stiffness or added mass is dominant will be determined. The critical ratio (which contribution of effect cancel each others) between the thickness of the adsorbed layer and the cantilever and ratio between stiffness and density of adsorbed layer and cantilever have been determined. The calculations show the added mass and stiffness how contribute to the resonant behavior. This model gives insight into the decoupling of both opposite effects and is expected to be useful for the optimal design of resonators with high sensitivity to molecular adsorption based on either stiffness or mass effects.
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