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具有高灵敏度、快速响应和稳定电化学性能的大规模可穿戴纺织基汗液传感器。

Large-Scale Wearable Textile-Based Sweat Sensor with High Sensitivity, Rapid Response, and Stable Electrochemical Performance.

机构信息

Guangdong-Hong Kong Joint Laboratory for Advanced Textile Materials, College of Textile Science and Engineering, Wuyi University, Jiangmen 529020, China.

Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, Macau 999078, China.

出版信息

ACS Appl Mater Interfaces. 2024 Apr 10;16(14):18202-18212. doi: 10.1021/acsami.4c01521. Epub 2024 Mar 29.

Abstract

Textile-based sweat sensors display great potential to enhance wearable comfort and health monitoring; however, their widespread application is severely hindered by the intricate manufacturing process and electrochemical characteristics. To address this challenge, we combined both impregnation coating technology and conjugated electrospinning technology to develop an electro-assisted impregnation core-spinning technology (EAICST), which enables us to simply construct a sheath-core electrochemical sensing yarn (TPFV/CPP yarn) via coating PEDOT:PSS-coated carbon fibers (CPP) with polyurethane (TPU)/polyacrylonitrile (PAN)/poloxamer (F127)/valinomycin as shell. The TPFV/CPP yarn was sewn into the fabric and integrated with a sensor to achieve a detachable feature and efficiently monitor K levels in sweat. By introducing EAICST, a speed of 10 m/h can be realized in the continuous preparation of the TPFV/CPP yarn, while the interconnected pores in the yarn sheath enable it to quickly capture and diffuse sweat. Besides, the sensor exhibited excellent sensitivity (54.26 mV/decade), fast response (1.7 s), anti-interference, and long-term stability (5000 s or more). Especially, it also possesses favorable washability and wear resistance properties. Taken together, this study provides a crucial technical foundation for the development of advanced wearable devices designed for sweat analysis.

摘要

基于纺织品的汗液传感器具有增强可穿戴舒适性和健康监测的巨大潜力;然而,其广泛应用受到复杂的制造工艺和电化学特性的严重阻碍。为了解决这一挑战,我们结合了浸渍涂层技术和共轭静电纺丝技术,开发了一种电辅助浸渍芯纺技术(EAICST),通过将聚(3,4-乙烯二氧噻吩):聚苯乙烯磺酸(PEDOT:PSS)涂覆的碳纤维(CPP)涂覆聚氨酯(TPU)/聚丙烯腈(PAN)/泊洛沙姆(F127)/缬氨霉素作为壳,我们可以简单地构建一个鞘芯电化学传感纱线(TPFV/CPP 纱线)。将 TPFV/CPP 纱线缝制到织物中并与传感器集成,实现了可分离的功能,并有效地监测汗液中的 K 水平。通过引入 EAICST,我们可以在连续制备 TPFV/CPP 纱线时实现 10 m/h 的速度,同时纱线护套中的互连孔使其能够快速捕获和扩散汗液。此外,该传感器表现出优异的灵敏度(54.26 mV/decade)、快速响应(1.7 s)、抗干扰性和长期稳定性(5000 s 或更长时间)。特别是,它还具有良好的耐洗性和耐磨性。总之,本研究为开发用于汗液分析的先进可穿戴设备提供了重要的技术基础。

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