基于质量传感应用的分形悬臂MEMS建模与仿真

A. Aditya, E. Rufus
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引用次数: 1

摘要

小型化传感器以最小的样本量和大规模生产的可行性表现出快速响应。基于微悬臂梁的传感器检测方案已被证明是一种具有高灵敏度和选择性的潜在的化学和生物制剂检测技术。为了在灵敏度和选择性之间取得平衡,几何变化和尺寸可扩展性是主要的自适应技术。为了实现高灵敏度,进一步缩小尺寸使制造和固定成为一个复杂的过程。本文提出将分形几何结合到微悬臂梁中,用于微克级颗粒的质量传感应用,并集中在分形的一级。悬臂的尺寸约为200 * 20微米(um),具有一级分形结构,其比例因子为n=0.9,与水平面的梯度为30度。这种几何结构的建模和模拟结果表明,在悬臂顶端增加1um * 1um * 1um的金粒子质量可以提高灵敏度,并且在这种结构中增加表面积可以提高选择性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling and simulation of fractal cantilever's MEMS based for mass sensing applications
Miniaturized sensor's exhibit fast responses with minimal sample volume and feasibility of mass production. The Micro-cantilever based sensor detection scheme has been proved as a potential technology for sensing chemical and biological agents with high sensitivity and selectivity. The geometrical variation and dimensional scalability are the major adaptation techniques in order to achieve the trade off between sensitivity and selectivity. In order to achieve high sensitivity, scaling the dimensions down further makes fabrication and immobilisation a complex process. This paper proposes the incorporation of fractal geometry for a micro-cantilever for mass sensing applications at pico gram level of particles and concentrated on level one of fractal's. The dimensions of the cantilever are around 200∗20 micron (um) with level one fractal structure having a scaling factor of n=0.9 and with a gradient of 30 degrees with horizontal plane. The modelling and simulation of this geometry showed a promising result in increasing sensitivity with an added mass of gold particle of 1um∗ 1um∗ 1um at the tip of the cantilever and increase in surface area in this structures results in more selectivity.
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