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用于快速响应、稳定且透气的可穿戴传感器的微裂纹增强型聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐纺织品

Microcrack-Enhanced PEDOT:PSS Textile for Rapid-Response, Stable, and Breathable Wearable Sensors.

作者信息

Gu Yuzhe, Zhang Zixuan, Liu Weilin, Liao Yuan, Fei Wenkun, Zhang Yuxiang, Zhou Tongqing, Li Yang, Huang Liya, Li Jianmin

机构信息

College of Electronic and Optical Engineering, College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications (NJUPT), Nanjing 210023, China.

State Key Laboratory of Flexible Electronics (LoFE), Institute of Advanced Materials (IAM), Nanjing University of Posts and Telecommunications (NJUPT), Nanjing 210023, China.

出版信息

ACS Sens. 2025 Aug 28. doi: 10.1021/acssensors.5c01556.

Abstract

The lightweight, wearable, comfortable, and high-performance sensors are crucial for future wearable electronics to facilitate the real-time monitoring of human health. In this paper, the textile-based flexible dry sensor is fabricated by coating waterborne polyurethane (WPU) enhanced poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT:PSS) onto the commercial polyester fabric (PF). The WPU, containing both hard and soft segments, was synthesized by using the three-step acetaldehyde method. When the hard segment content was 30 wt %, it promoted better connectivity in the PEDOT regions, resulting in higher conductivity. Benefiting from the interaction among polymer chains of WPU and PEDOT:PSS, which enhances the orientation of PEDOT and phase separation of PEDOT with PSS, the PEDOT:PSS/WPU (PW) composite materials achieved conductivity as high as 3000 S cm after being treated with sulfuric acid (HSO). As a result, the PW-coated fabric (PWF) achieved the lowest resistance value of 71.69 Ω sq at room temperature. Notably, by prestretching of the stretchable PWF, the microcracks are induced on the PW coating, which optimize the internal structure and stress distribution and therefore endow the PWF with superior sensitivity and stability, enabling it to respond within 80 ms (at 400 Pa pressure) and maintain stability under multiple compression cycles (100 Pa) at frequencies between 0.05 and 0.5 Hz. Additionally, the prestretching process endows the PWF with a higher water vapor transmission rate (23.8 kg m d) than the pristine fabrics, despite the reduced conductivity and mechanical integrity. The as-fabricated PWF shows great potential for wearable body motion and electrocardiogram monitoring.

摘要

轻便、可穿戴、舒适且高性能的传感器对于未来可穿戴电子产品实现人体健康的实时监测至关重要。在本文中,通过将水性聚氨酯(WPU)增强的聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT:PSS)涂覆在商用聚酯织物(PF)上,制备了基于纺织品的柔性干式传感器。采用三步乙醛法合成了同时含有硬段和软段的WPU。当硬段含量为30 wt%时,它促进了PEDOT区域更好的连通性,从而导致更高的导电性。受益于WPU与PEDOT:PSS聚合物链之间的相互作用,这增强了PEDOT的取向以及PEDOT与PSS的相分离,经硫酸(HSO)处理后,PEDOT:PSS/WPU(PW)复合材料的电导率高达3000 S cm。结果,涂覆有PW的织物(PWF)在室温下实现了71.69 Ω sq的最低电阻值。值得注意的是,通过对可拉伸的PWF进行预拉伸,在PW涂层上诱导出微裂纹,这优化了内部结构和应力分布,因此赋予PWF卓越的灵敏度和稳定性,使其能够在80 ms内响应(在400 Pa压力下)并在0.05至0.5 Hz频率的多个压缩循环(100 Pa)下保持稳定。此外,尽管电导率和机械完整性有所降低,但预拉伸过程赋予PWF比原始织物更高的水蒸气透过率(23.8 kg m d)。所制备的PWF在可穿戴人体运动和心电图监测方面显示出巨大潜力。

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