Designing wearable capacitive pressure sensors with arrangement of porous pyramidal microstructures

IF 4.7 Q2 NANOSCIENCE & NANOTECHNOLOGY Micro and Nano Systems Letters Pub Date : 2023-10-24 DOI:10.1186/s40486-023-00178-7
Reza Javidi, Mahdi Moghimi Zand, Sara Alizadeh Majd
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Abstract

Capacitive pressure sensors are essential for advanced applications like wearable medical devices, electronic skins, and biological signal detection systems. Enhancing sensitivity in these sensors is achieved by incorporating porous microstructures into the dielectric layer. The present research focuses on designing a capacitive pressure sensor comprising a porous micro-pyramidal dielectric layer featuring diagonally arranged pyramids. The effects of geometric parameters and material properties such as dielectric constant, porosity, base length, tip width, height, and the distance between the pyramidal microstructures were examined using the three-dimensional finite element simulations. A comparative analysis was conducted to evaluate the accuracy of the numerical solution. The simulation results were compared to experimental measurements, and the findings revealed a high level of agreement. The optimal quantity of data for this analysis was determined using the design of the experiment method, specifically the response surface model. The results show that arranging microstructures diagonally or laterally can impact sensitivity and initial capacitance. Specifically, employing a diagonal arrangement enhanced sensor sensitivity by up to 1.65 times while maintaining the initial capacitance relatively unaffected. Ultimately, this study derived mathematical equations from the collected data to estimate the initial capacitance and sensitivity of the sensor. The model predictions were compared to simulation results, and it was found that the models performed effectively.

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多孔锥体结构可穿戴电容式压力传感器的设计
电容式压力传感器对于可穿戴医疗设备、电子皮肤和生物信号检测系统等先进应用至关重要。通过在介电层中加入多孔微结构来提高这些传感器的灵敏度。本研究的重点是设计一种电容式压力传感器,该传感器由具有对角线排列金字塔的多孔微金字塔介质层组成。采用三维有限元模拟方法研究了介电常数、孔隙率、基底长度、尖端宽度、高度以及锥体微结构之间的距离等几何参数和材料性能的影响。通过对比分析,评价了数值解的准确性。将模拟结果与实验测量结果进行了比较,结果显示出高度的一致性。通过实验方法的设计,特别是响应面模型,确定了本分析的最佳数据量。结果表明,沿对角线或横向排列微结构会影响灵敏度和初始电容。具体来说,采用对角线排列可将传感器灵敏度提高1.65倍,同时保持初始电容相对不受影响。最后,本研究从收集的数据推导出数学方程来估计传感器的初始电容和灵敏度。将模型预测结果与仿真结果进行了比较,结果表明模型是有效的。
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来源期刊
Micro and Nano Systems Letters
Micro and Nano Systems Letters Engineering-Biomedical Engineering
CiteScore
10.60
自引率
5.60%
发文量
16
审稿时长
13 weeks
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