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Design and Fabrication of Flexible Capacitive Sensor With Cellular Structured Dielectric Layer via 3D Printing

机译:通过3D打印与蜂窝结构介电层的柔性电容传感器的设计与制造

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Because of high sensitivity, mechanical robustness, lightweight and wearability, flexible capacitive pressure transducer has been widely considered one of the most critical soft electronics in wearable consumables and e-skins. The enhancement of the pressure sensitivity of a flexible capacitive sensor relies on the introduction of interfacial microstructure to the dielectric layer. We demonstrate a new methodology to fabricate flexible capacitive sensors with copper-plated polyimide (PI) films as the electrodes and a porous polydimethylsiloxane (PDMS) layer 3D printed via the direct-ink-writing approach. Time-of-flight secondary ion mass spectrometry is developed to optimize the electroless copper plated PI films. What is further examined is the impact of the geometric complexity of the cellular PDMS structure, including filament width, spacing and alignment, on sensitivity, repeatability and reliability of the developed capacitive sensor. A robotic gripper equipped with our flexible pressure sensor showcases its competence to grip a soft target with well-posed force control. It is expected that our proposed sensor design and manufacturing methodology will advance the development of soft electronics and wearable sensors.
机译:由于具有高灵敏度,机械稳健性,轻质和耐磨性,柔性电容压力传感器已被广泛认为可穿戴耗材和电子皮肤中最关键的软电子产品之一。柔性电容传感器的压力灵敏度的提高依赖于引入界面微观结构到介电层。我们证明了一种新的方法,以通过直接墨水写入方法作为电极制造具有铜镀聚酰亚胺(PI)膜的柔性电容传感器和多孔聚二甲基硅氧烷(PDMS)层3D。开发出飞行时间二次离子质谱法以优化化学镀铜PI薄膜。进一步检查的是蜂窝PDMS结构的几何复杂性的影响,包括灯丝宽度,间距和对准,对所开发电容传感器的灵敏度,可重复性和可靠性。配备我们的柔性压力传感器的机器人夹具展示了其具有良好姿势控制的软目标的能力。预计我们所提出的传感器设计和制造方法将推进软电子和可穿戴传感器的开发。

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