Flexible capacitive pressure sensor based on interdigital electrodes with porous microneedle arrays for physiological signal monitoring

Jiahui Xu, Minghao Wang, Minyi Jin, Siyan Shang, Chuner Ni, Yili Hu, Xun Sun, Jun Xu, Bowen Ji, Le Li, Yuhua Cheng, Gaofeng Wang
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Abstract

Flexible pressure sensors have many potential applications in the monitoring of physiological signals because of their good biocompatibility and wearability. However, their relatively low sensitivity, linearity, and stability have hindered their large-scale commercial application. Herein, a flexible capacitive pressure sensor based on an interdigital electrode structure with two porous microneedle arrays (MNAs) is proposed. The porous substrate that constitutes the MNA is a mixed product of polydimethylsiloxane and NaHCO3. Due to its porous and interdigital structure, the maximum sensitivity (0.07 kPa−1) of a porous MNA-based pressure sensor was found to be seven times higher than that of an imporous MNA pressure sensor, and it was much greater than that of a flat pressure sensor without a porous MNA structure. Finite-element analysis showed that the interdigital MNA structure can greatly increase the strain and improve the sensitivity of the sensor. In addition, the porous MNA-based pressure sensor was found to have good stability over 1500 loading cycles as a result of its bilayer parylene-enhanced conductive electrode structure. Most importantly, it was found that the sensor could accurately monitor the motion of a finger, wrist joint, arm, face, abdomen, eye, and Adam’s apple. Furthermore, preliminary semantic recognition was achieved by monitoring the movement of the Adam’s apple. Finally, multiple pressure sensors were integrated into a 3 × 3 array to detect a spatial pressure distribution. Compared to the sensors reported in previous works, the interdigital electrode structure presented in this work improves sensitivity and stability by modifying the electrode layer rather than the dielectric layer.
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基于多孔微针阵列间电极的柔性电容式压力传感器,用于生理信号监测
柔性压力传感器具有良好的生物兼容性和可穿戴性,因此在生理信号监测方面有许多潜在应用。然而,相对较低的灵敏度、线性度和稳定性阻碍了它们的大规模商业应用。本文提出了一种柔性电容式压力传感器,该传感器基于带有两个多孔微针阵列(MNA)的交叉电极结构。构成 MNA 的多孔基底是聚二甲基硅氧烷和 NaHCO3 的混合产物。由于其多孔和齿间结构,基于多孔 MNA 的压力传感器的最大灵敏度(0.07 kPa-1)是无孔 MNA 压力传感器的七倍,远高于无多孔 MNA 结构的平面压力传感器。有限元分析表明,齿间 MNA 结构可以大大增加应变,提高传感器的灵敏度。此外,由于采用了双层对二甲苯增强导电电极结构,基于多孔 MNA 的压力传感器在 1500 次加载周期内具有良好的稳定性。最重要的是,研究发现该传感器可以准确监测手指、腕关节、手臂、面部、腹部、眼睛和喉结的运动。此外,通过监测喉结的运动,还实现了初步的语义识别。最后,多个压力传感器被集成到一个 3 × 3 阵列中,以检测空间压力分布。与之前报道的传感器相比,本研究中提出的齿间电极结构通过修改电极层而不是电介质层,提高了灵敏度和稳定性。
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