Zhang Xuefeng, Chang Sheng, Tong Zhixue
School of Mechanical and Electrical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.
Micromachines (Basel). 2022 Jul 23;13(8):1164. doi: 10.3390/mi13081164.
As the foremost component of wearable devices, flexible pressure sensors require high sensitivity, wide operating ranges, and great stability. In this paper, a pressure sensor comprising a regular batten microstructure active layer is presented. First, the influences of the dimensional parameters of the microstructures on the performances of the sensors were investigated by the mechanical finite element method (FEM). Then, parameters were optimized and determined based on the results of this investigation. Next, active layers were prepared by molding multiwalled carbon nanotube/polyurethane (MWCNT/PU) conductive composite using a printed circuit board template. Finally, a resistive flexible pressure sensor was fabricated by combining an active layer and an interdigital electrode. With advantages in terms of the structure and materials, the sensor exhibited a sensitivity of up to 46.66 kPa in the range of 0-1.5 kPa and up to 6.67 kPa in the range of 1.5-7.5 kPa. The results of the experiments show that the designed flexible pressure sensor can accurately measure small pressures and realize real-time human physiological monitoring. Furthermore, the preparation method has the advantages of a low cost, simple design, and high consistency. Thus, it has potential to promote the development of flexible sensors, wearable devices, and other related devices.
作为可穿戴设备的首要组件,柔性压力传感器需要具备高灵敏度、宽工作范围和高稳定性。本文提出了一种包含规则板条微结构活性层的压力传感器。首先,通过机械有限元方法(FEM)研究了微结构尺寸参数对传感器性能的影响。然后,根据该研究结果对参数进行了优化和确定。接下来,使用印刷电路板模板模制多壁碳纳米管/聚氨酯(MWCNT/PU)导电复合材料制备活性层。最后,通过将活性层与叉指电极相结合,制造出了一种电阻式柔性压力传感器。该传感器在结构和材料方面具有优势,在0-1.5 kPa范围内灵敏度高达46.66 kPa,在1.5-7.5 kPa范围内高达6.67 kPa。实验结果表明,所设计的柔性压力传感器能够准确测量微小压力并实现人体生理实时监测。此外,该制备方法具有成本低、设计简单和一致性高的优点。因此,它有潜力推动柔性传感器、可穿戴设备及其他相关设备的发展。