Piezoresistive Effect of Interdigitated Electrode Spacing Graphene-based MEMS Intracranial Pressure Sensor

S. Rahman, N. Soin, F. Ibrahim
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引用次数: 1

Abstract

Two-dimensional (2D) materials have recently drawn great attention among researchers for emerging electronics. Among these materials, graphene has shown great potential in various types of sensor applications due to its superior electronic and mechanical properties. Its two-dimensionality as well as its high flexibility, conductivity, and transparency make graphene a promising candidate for flexible electronics. This paper reports the development of resistive graphene-based MEMS pressure sensor integrated with interdigitated electrode. These interdigitated electrode structure act as pressure magnifying structure as well as reducing the output non-linearity. A COMSOL simulation was carried out for design optimization of the resistive pressure sensor. In this study, the effect of optimization of the spacing between the Al electrodes is presented to improve the performance of graphene-based pressure sensors at room temperature. Three different spacing distances of 10, 20 and 40 μ m were used as the experimental parameters. The increased spacing could affect in increasing tensile strain on graphene and increased defect generation at the grain boundaries. Therefore, the pressure sensor response could also be improved by increasing the spacing of the interdigitated electrode.
交错电极间距石墨烯MEMS颅内压传感器的压阻效应
二维(2D)材料最近引起了新兴电子学研究人员的极大关注。在这些材料中,石墨烯由于其优越的电子和机械性能,在各种类型的传感器应用中显示出巨大的潜力。石墨烯的二维特性以及高柔韧性、导电性和透明性使其成为柔性电子材料的理想候选材料。本文报道了一种集成了交叉指状电极的电阻式石墨烯MEMS压力传感器的研制。这些交错电极结构在减小输出非线性的同时起到了压力放大结构的作用。通过COMSOL仿真对电阻式压力传感器进行了优化设计。在本研究中,提出了优化铝电极间距对改善室温下石墨烯压力传感器性能的影响。采用10、20、40 μ m三种不同的间距作为实验参数。间距的增加会增加石墨烯的拉伸应变和晶界缺陷的产生。因此,增加交叉电极的间距也可以改善压力传感器的响应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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