School of Textile and Clothing, Jiangnan University , Wuxi 214122, China.
Provincial Key Laboratory of Functional Textile Materials, Zhongyuan University of Technology , Zhengzhou 450007, China.
ACS Appl Mater Interfaces. 2017 Dec 13;9(49):42951-42960. doi: 10.1021/acsami.7b07935. Epub 2017 Sep 25.
The development of flexible and stretchable electronic skins that can mimic the complex characteristics of natural skin is of great value for applications in human motion detection, healthcare, speech recognition, and robotics. In this work, we propose an efficient and low-cost fabrication strategy to construct a highly sensitive and stretchable electronic skin that enables the detection of dynamic and static pressure, strain, and flexion based on an elastic graphene oxide (GO)-doped polyurethane (PU) nanofiber membrane with an ultrathin conductive poly(3,4-ethylenedioxythiophene) (PEDOT) coating layer. The three-dimensional porous elastic GO-doped PU@PEDOT composite nanofibrous substrate and the continuous self-assembled conductive pathway in the nanofiber-based electronic skin offer more contact sites, a larger deformation space, and a reversible capacity for pressure and strain sensing, which provide multimodal mechanical sensing capabilities with high sensitivity and a wide sensing range. The nanofiber-based electronic skin sensor demonstrates a high pressure sensitivity (up to 20.6 kPa), a broad sensing range (1 Pa to 20 kPa), excellent cycling stability and repeatability (over 10,000 cycles), and a high strain sensitivity over a wide range (up to approximately 550%). We confirmed the applicability of the nanofiber-based electronic skin to pulse monitoring, expression, voice recognition, and the full range of human motion, demonstrating its potential use in wearable human-health monitoring systems.
开发能够模拟自然皮肤复杂特性的柔性可拉伸电子皮肤对于应用于人体运动检测、医疗保健、语音识别和机器人技术具有重要价值。在这项工作中,我们提出了一种高效、低成本的制造策略,构建了一种高灵敏度、可拉伸的电子皮肤,该电子皮肤基于具有超薄导电聚(3,4-亚乙基二氧噻吩)(PEDOT)涂层的弹性氧化石墨烯(GO)掺杂聚氨酯(PU)纳米纤维膜,能够检测动态和静态压力、应变和弯曲。三维多孔弹性 GO 掺杂 PU@PEDOT 复合纳米纤维基底和基于纳米纤维的电子皮肤中的连续自组装导电通路提供了更多的接触点、更大的变形空间和压力和应变传感的可逆容量,为压力和应变传感提供了多模态机械传感能力,具有高灵敏度和宽传感范围。基于纳米纤维的电子皮肤传感器具有高达 20.6 kPa 的高压力灵敏度、1 Pa 至 20 kPa 的宽传感范围、出色的循环稳定性和可重复性(超过 10,000 次循环),以及在宽范围内的高应变灵敏度(高达约 550%)。我们证实了基于纳米纤维的电子皮肤在脉搏监测、表情、语音识别和人体全运动监测中的适用性,展示了其在可穿戴人体健康监测系统中的应用潜力。