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Low-hysteresis, pressure-insensitive, and transparent capacitive strain sensor for human activity monitoring

机译:用于人体活动监测的低滞后、压力不敏感和透明电容式应变传感器

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Wearable strain sensors have been widely used for human activity monitoring. Most reported strain sensors have mainly focused on material engineering, high stretchability and large gauge factors. Few works have focused on strain sensor's robustness and reliability, including low hysteresis, good long-term stability, good electrode material stability, and low coupling effects under multi-input signals, which are the factors that limit practical strain sensor applications. To develop a high-performance strain sensor, we propose a flexible capacitive sensor structure with three-dimensional (3D) interdigital electrodes fabricated by vertically aligned carbon nanotubes. Compared with a traditional resistive strain sensor and a capacitive strain sensor with vertical sandwich electrodes, a strain sensor with horizontal parallel interdigital electrodes can benefit from low cross talk in terms of the normal force and improve substrate transparency. Additionally, embedding 3D electrodes into the substrate improves ultrahigh robustness with a low-pressure coupling effect under normal force. Moreover, compared with other reported works, the electrode variation under strain is small (less than 1.6), which means that the perturbation of inert properties on device performance is small. Finally, the fabricated strain sensor achieves an ultralow hysteresis (0.35), excellent pressure-insensitive performance (less than 0.8), fast response (60 ms), good long-term stability, and good transparency. As an application example, a flexible strain sensor was successfully demonstrated as a wearable device for the precise monitoring of different types of human activities, including bending of the finger, knee, elbow, wrist, and neck with large strain signals and small strain signals generated by a mouth-opening activity. This excellent performance indicates that the flexible strain sensor is a promising candidate for human motion detection, soft robotics, and medical care.
机译:可穿戴应变传感器已广泛用于人体活动监测。大多数报道的应变传感器主要集中在材料工程、高拉伸性和大规格系数方面。很少有工作关注应变传感器的鲁棒性和可靠性,包括低滞后、良好的长期稳定性、良好的电极材料稳定性以及多输入信号下的低耦合效应,这些都是限制应变传感器实际应用的因素。为了开发高性能应变传感器,我们提出了一种柔性电容式传感器结构,该结构具有由垂直排列的碳纳米管制成的三维(3D)指间电极。与传统的电阻式应变传感器和垂直夹层电极的电容式应变传感器相比,水平并联指间电极的应变传感器在法向力方面具有低串扰优势,并提高了基板透明度。此外,将 3D 电极嵌入基板可提高超高鲁棒性,并在法向力下具有低压耦合效果。此外,与其他报道的工作相比,应变下的电极变化很小(小于1.6%),这意味着惰性特性对器件性能的扰动很小。最后,制造的应变传感器实现了超低滞后(0.35%)、优异的压不敏感性能(小于0.8%),响应速度快(60 ms),长期稳定性好,透明度好。作为应用示例,柔性应变传感器被成功证明为一种可穿戴设备,用于精确监测不同类型的人类活动,包括手指、膝盖、肘部、手腕和颈部的弯曲,以及张嘴活动产生的大应变信号和小应变信号。这种出色的性能表明,柔性应变传感器是人体运动检测、软机器人和医疗保健的有前途的候选者。

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