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具有有序多孔介电微结构的灵敏、稳健、宽量程和高一致性电容式触觉传感器。

Sensitive, Robust, Wide-Range, and High-Consistency Capacitive Tactile Sensors with Ordered Porous Dielectric Microstructures.

作者信息

Li Zhikang, Zhao Kang, Wang Jiaxiang, Wang Bin, Lu Jijian, Jia Boqing, Ji Tian, Han Xiangguang, Luo Guoxi, Yu Yilin, Wang Lu, Li Min, Wang Zhengjin, Zhao Libo

机构信息

State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

ACS Appl Mater Interfaces. 2024 Feb 14;16(6):7384-7398. doi: 10.1021/acsami.3c15368. Epub 2024 Feb 3.

Abstract

Flexible capacitive tactile sensors show great promise in personalized healthcare monitoring and human-machine interfaces, but their practical application is normally hindered because they rarely possess the required comprehensive performance, that is, high pressure sensitivity and fast response within a broad pressure range, high structure robustness, performance consistency, etc. This paper aims to engineer flexible capacitive pressure sensors with highly ordered porous dielectric microstructures and a 3D-printing-based fully solution-processable fabrication process. The proposed dielectric layer with uniformly distributed interior microporous can not only increase its compressibility and dynamic response within an extended pressure range but also enlarge its contact area with electrodes, contributing to a simultaneous improvement in the sensitivity, response speed, detection range, and structure robustness. Meanwhile, owing to its superior abilities in complex structure manufacturing and dimension controlling, the proposed 3D-printing-based fabrication process enables the consistent fabrication of the porous microstructure and thus guarantees device consistency. As a result, the prepared pressure sensors exhibit a high sensitivity of 0.21 kPa, fast response and relaxation times of 112 and 152 ms, an interface bonding strength of more than 455.2 kPa, and excellent performance consistency (≤5.47% deviation among different batches of sensors) and tunability. Encouraged by this, the pressure sensor is further integrated with a wireless readout circuit and realizes wireless wearable monitoring of various biosignals (pulse waves and heart rate) and body movements (from slight finger touch to large knee bending). Finally, the influence law of the feature parameters of the porous microstructure on device performance is established by the finite element method, paving the way for sensor optimization. This study motivates the development of flexible capacitive pressure sensors toward practical application.

摘要

柔性电容式触觉传感器在个性化医疗监测和人机界面方面展现出巨大潜力,但其实际应用通常受到阻碍,因为它们很少具备所需的综合性能,即在宽压力范围内的高压力灵敏度和快速响应、高结构稳健性、性能一致性等。本文旨在设计具有高度有序多孔介电微结构和基于3D打印的全溶液可加工制造工艺的柔性电容式压力传感器。所提出的具有均匀分布内部微孔的介电层不仅可以在扩展的压力范围内提高其压缩性和动态响应,还可以扩大其与电极的接触面积,有助于同时提高灵敏度、响应速度、检测范围和结构稳健性。同时,由于其在复杂结构制造和尺寸控制方面的卓越能力,所提出的基于3D打印的制造工艺能够一致地制造多孔微结构,从而保证器件的一致性。结果,制备的压力传感器具有0.21 kPa的高灵敏度、112和152 ms的快速响应和弛豫时间、超过455.2 kPa的界面结合强度以及优异的性能一致性(不同批次传感器之间的偏差≤5.47%)和可调性。受此鼓舞,压力传感器进一步与无线读出电路集成,实现了对各种生物信号(脉搏波和心率)和身体运动(从轻微手指触摸到大幅度膝盖弯曲)的无线可穿戴监测。最后,通过有限元方法建立了多孔微结构特征参数对器件性能的影响规律,为传感器优化铺平了道路。这项研究推动了柔性电容式压力传感器向实际应用的发展。

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