School of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Polymer Materials, South China University of Technology, Guangzhou 510640, China.
School of Materials Science and Engineering, Key Lab of Guangdong Province for High Property and Functional Polymer Materials, South China University of Technology, Guangzhou 510640, China.
J Colloid Interface Sci. 2022 Jul;617:478-488. doi: 10.1016/j.jcis.2022.03.013. Epub 2022 Mar 6.
In recent years, flexible high-performance piezoresistive pressure sensors have attracted considerable attention for the important application potential in the emerging fields of smart robots, wearable electronics and electronic skin. Herein, inspired by human skin, a new strategy was proposed for the fabrication of a double-layer piezoresistive pressure sensor with wide sensing range and high sensitivity. It was based on the utilization of sandpaper as template and MXene for the constructions of micro-protrusion rough surface on polydimethylsiloxane film and electrically conductive pathways, respectively. The prepared sensor demonstrated high sensitivity of 2.6 kPa in wide linear range of 0-30 kPa, fast response/recovery time of 40/40 ms and excellent repeatability. Importantly, the sensor was successfully applied for the real-time detection of radial artery heart rate, limb movement, handwriting and vocal cord vocalization. Moreover, the integrated device by the sensors had the capability of identifying and visualizing spatial pressure distribution. The findings conceivably stand out a new methodology to prepare flexible high-performance piezoresistive pressure sensors for wearable electronics, human-computer interaction, intelligent robots and health monitoring.
近年来,柔性高性能压阻式压力传感器因其在智能机器人、可穿戴电子设备和电子皮肤等新兴领域的重要应用潜力而受到广泛关注。受人体皮肤启发,本研究提出了一种新策略,用于制备具有宽传感范围和高灵敏度的双层压阻式压力传感器。该策略基于利用砂纸作为模板,以及 MXene 分别构建聚二甲基硅氧烷薄膜上的微凸起粗糙表面和导电通路。所制备的传感器在 0-30 kPa 的宽线性范围内表现出 2.6 kPa 的高灵敏度、40/40 ms 的快速响应/恢复时间和优异的可重复性。重要的是,该传感器成功应用于实时检测桡动脉心率、肢体运动、手写和声带发声。此外,由这些传感器组成的集成设备具有识别和可视化空间压力分布的能力。这些发现为可穿戴电子设备、人机交互、智能机器人和健康监测领域制备柔性高性能压阻式压力传感器提供了一种新方法。