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皮肤启发式纺织电子产品实现超灵敏压力感应。

Skin-Inspired Textile Electronics Enable Ultrasensitive Pressure Sensing.

机构信息

School of Textile and Garment, Anhui Polytechnic University, Wuhu, Anhui, 241000, China.

School of Mechanical Engineering and Rail Transit, Changzhou University, Changzhou, 213164, China.

出版信息

Small. 2024 Aug;20(33):e2310032. doi: 10.1002/smll.202310032. Epub 2024 Apr 2.

Abstract

Wearable pressure sensors have attracted great interest due to their potential applications in healthcare monitoring and human-machine interaction. However, it is still a critical challenge to simultaneously achieve high sensitivity, low detection limit, fast response, and outstanding breathability for wearable electronics due to the difficulty in constructing microstructure on a porous substrate. Inspired by the spinosum microstructure of human skin for highly-sensitive tactile perception, a biomimetic flexible pressure sensor is designed and fabricated by assembling MXene-based sensing electrode and MXene-based interdigitated electrode. The product biomimetic sensor exhibits good flexibility and suitable air permeability (165.6 mm s), comparable to the typical air permeable garments. Benefiting from the two-stage amplification effect of the bionic intermittent structure, the product bionic sensor exhibits an ultrahigh sensitivity (1368.9 kPa), ultrafast response (20 ms), low detection limit (1 Pa), and high-linearity response (R = 0.997) across the entire sensing range. Moreover, the pressure sensor can detect a wide range of human motion in real-time through intimate skin contact, providing essential data for biomedical monitoring and personal medical diagnosis. This principle lays a foundation for the development of human skin-like high-sensitivity, fast-response tactile sensors.

摘要

可穿戴压力传感器由于在医疗监测和人机交互中的潜在应用而引起了极大的兴趣。然而,由于在多孔基底上构建微结构的困难,同时实现可穿戴电子产品的高灵敏度、低检测限、快速响应和出色的透气性仍然是一个关键挑战。受人类皮肤棘突结构的高度敏感触觉感知的启发,通过组装基于 MXene 的传感电极和基于 MXene 的叉指电极,设计并制造了一种仿生柔性压力传感器。该仿生传感器具有良好的柔韧性和适宜的透气性(165.6mm/s),可与典型的透气服装相媲美。得益于仿生间歇结构的两级放大效应,该仿生传感器具有超高的灵敏度(1368.9kPa)、超快的响应速度(20ms)、低检测限(1Pa)和在整个传感范围内的高线性响应(R=0.997)。此外,该压力传感器可以通过与皮肤的紧密接触实时检测广泛的人体运动,为生物医学监测和个人医疗诊断提供必要的数据。该原理为开发具有高灵敏度、快速响应的类人皮肤触觉传感器奠定了基础。

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