Design and TEM Simulation of a MEMS Based Microcantilever Cardiac Marker Sensor

Author:

Vidhya Sree1,Kumar Gideon Praveen2,Mathew Lazar2

Affiliation:

1. Healthcare Practice, Frost and Sullivan [P] Ltd., Chennai 600035, India

2. School of Biosciences and Technology, VIT University, Vellore, Tamil Nadu 632014, India

Abstract

Piezoresistive actuation of a microcantilever induced by biomolecular binding such as DNA hybridization and antibody-antigen binding is an important principle useful in biosensing applications. As the magnitude of the forces exerted is small, increasing the sensitivity of the microcantilever becomes critical. In this paper, we are considering to achieve this by geometric variation in the cantilever. The sensitivity of the cantilever was improved so that the device can sense the presence of antigen even if the magnitude of surface-stresses over the microcantilever was very small. We consider a “T-shaped” cantilever that eliminates the disadvantages while improving the sensitivity simultaneously. Simulations for validation have been performed using INTELLISUITE software (a micro-electromechanical system design and simulation package). The simulations reveal that the T-shaped microcantilever is almost as sensitive as a thin cantilever and has relatively very low buckling effect. Simulations also reveal that with an increase in thickness of the cantilever, there is a proportional decrease in the sensitivity.

Publisher

ASME International

Subject

Electrical and Electronic Engineering,General Materials Science,General Medicine

Reference7 articles.

1. Comparison of Myoglobin, Creatine Kinase MB, and Cardiac Troponin I for Diagnosis of Acute Myocardial Infarction;Wu;Ann. Clin. Lab Sci.

2. Piezoresistive Geometry for Maximizing Microcantilever Array Sensitivity;Fletcher

3. A Flow-Through Amperometric Sensor for Micro-Analytical Systems;Pijanowska;Sens. Actuators B

4. Simulation and Design of Piezoelectric Microcantilever Chemical Sensors;Zhou;Sens. Actuators, A

5. Fabrication and Characterization of SiO2 Microcantilever for Microsensor Application;Tang;Sens. Actuators B

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