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Design simulation and theoretical analysis of glucose sensing using Polysilicon-based CMOS micromachined Piezoresistive Microcantilever

机译:基于多晶硅的CMOS微机械压阻式微电子设计血糖感测的设计仿真与理论分析

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This work has focused on the design simulation analysis of a Polysilicon-based CMOS micromachined Piezoresistive Microcantilever beam for glucose sensing application. In principle, adsorption of glucose on a functionalized surface of the microfabricated cantilever will cause a surface stress and consequently the cantilever bending. In this paper, the microcantilever beam is constructed and bending analysis is performed so that the beam tip deflection could be predicted. The device model was simulated using CoventorWareTM, a commercial finite element analysis (FEA) tool designed specifically for MEMS applications. The structural variation of the piezoresistors designs on cantilever beam is also considered to increase the sensitivity of the microcantilevers sensor since the forces involved is very small. Besides, the mechanic characteristics of the microcantilever beam such as displacement were observed based on transient response characteristics usinganalytical method and simulation method with Matlab Simulink. We observed that the best output response which have fastest response, low overshoot and low steady state error is when d=3.30 and k=3.
机译:本作品专注于多晶硅基CMOS微机械压阻式微电路梁的设计仿真分析,用于葡萄糖传感应用。原则上,葡萄糖对微制造悬臂的官能化表面上的吸附将导致表面应力并因此引起悬臂弯曲。在本文中,构造了微导体光束,并进行弯曲分析,从而可以预测光束尖端偏转。使用Coventorware TM ,专为MEMS应用而设计的商业有限元分析(FEA)工具进行模拟。由于所涉及的力非常小,因此还认为压电梁设计的压阻器设计的结构变化也被认为是增加微电坡传感器的灵敏度。此外,基于使用MATLAB Simulink的分析方法和仿真方法,观察到诸如位移的微膜梁的机械特性。我们观察到,当D = 3.30和k = 3时,我们认为具有最快的响应,低过冲和低稳态误差的最佳输出响应。

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