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3D Printed Ultrastretchable Hyper-Antifreezing Conductive Hydrogel for Sensitive Motion and Electrophysiological Signal Monitoring

机译:3D印刷超微触发超抗抗脂导电水凝胶用于敏感运动和电生理信号监测

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摘要

Conductive hydrogels with high stretchability can extend their applications as a flexible electrode in electronics, biomedicine, human-machine interfaces, and sensors. However, their time-consuming fabrication and narrow ranges of working temperature and working voltage severely limit their further potential applications. Herein, a conductive nanocomposite network hydrogel fabricated by projection microstereolithography (PμSL) based 3D printing is proposed, enabling fast fabrication ability with high precision. The 3D printed hydrogels exhibit ultra-stretchability (2500%), hyper-antifreezing (-125°C), extremely low working voltage (<100 μV), and super cyclic tensile stability (1 million cycles). The hydrogel-based strain sensor can probe both large-scale and tiny human motions, even with ultralow voltage of 100 μV at extremely low temperature around −115°C. It is demonstrated that the present hydrogels can be used as a flexible electrode for capturing human electrophysiological signals (EOG and EEG), where the alpha and beta waves from the brain can be recorded precisely. Therefore, the present hydrogels will pave the way for the development of next-generation intelligent electronics, especially for those working under extremely low-temperature environments.
机译:具有高拉伸性的导电水凝胶可以将其应用延伸为电子,生物医学,人机界面和传感器中的柔性电极。然而,它们耗时的制造和工作温度和工作电压的窄范围严重限制了其进一步的潜在应用。这里,提出了一种由投影微管状光刻(PμSL)的3D打印制造的导电纳米复合网水凝胶,使得具有高精度的快速制造能力。 3D印刷水凝胶表现出超可拉伸性(2500%),超防污(-125°C),非常低的工作电压(<100μV),以及超循环拉伸稳定性(100百万个循环)。基于水凝胶的应变传感器可以探测大规模和微小的人体运动,即使在极低温度下为100μV的超低电压左右约为-115°C。结果证明,本水凝胶可以用作捕获人电生理信号(Eog和Eog)的柔性电极,其中可以精确地记录来自大脑的α和β波。因此,本水凝胶将为下一代智能电子产品铺平道路,特别是对于在极低温度环境下工作的那些。

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