A Stretchable and Self-Healing Dual-Functional Wearable Sensor Enabled by Wet-Spun Conductive Thermoplastic Nanocomposite Fibers

Analytica Pub Date : 2023-08-01 DOI:10.3390/analytica4030025
Zifeng Wang, Xiyu Wang, Jiaming Cui, Zhuo Shi, Feng Yan, Yutong Han, Zhanhong Li, Zhigang Zhu
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Abstract

Continuous monitoring of body movements or physicochemical health indicators by various wearable devices with intriguing geometries has attracted increasing research attention. Among them, fiber-based wearable devices have been intensively investigated due to the ease of fabrication, excellent flexibility and adaptability, and abundant applicable working mechanisms. Although various spinning methods can prepare composite fibers, obtaining highly conductive fibers at high filler-loading fractions has always been difficult. In addition, most synthetic fibers are designed only for specific applications, exhibiting narrow applicability. This work proposed a dual-functional smart fiber-based sensor that could work based on either piezoresistive or electrochemical mechanisms. Through the wet spinning of dopes containing nanosized carbon black and thermoplastic polyurethane, nanocomposite fibers with decent electrical conductivities (2.10 × 102 S m−1 or 4.77 × 10−3 Ω·m), high mechanical stretch abilities and toughness (εmax~2400%, KIC = 61.44 MJ m−3), as well as excellent self-heal abilities (η ≥ 64.8%), could be obtained. Such coupled electromechanical properties endowed the as-synthesized fibers with strain-sensing or biomarker monitoring capabilities based on piezoresistive or electrochemical mechanisms. The proposed novel dual-functional smart fibers demonstrated potential for multifunctional wearable health monitoring devices.
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湿纺导电热塑性纳米复合纤维可拉伸自修复双功能可穿戴传感器
通过各种具有有趣几何形状的可穿戴设备连续监测身体运动或物理化学健康指标引起了越来越多的研究关注。其中,基于纤维的可穿戴设备因其易于制造、具有优异的灵活性和适应性以及丰富的适用工作机制而受到广泛研究。虽然各种纺丝方法都可以制备复合纤维,但获得高填充分数的高导电性纤维一直是一个难题。此外,大多数合成纤维仅为特定应用而设计,适用性较窄。这项工作提出了一种双功能智能光纤传感器,可以基于压阻或电化学机制工作。通过对纳米炭黑和热塑性聚氨酯掺杂材料进行湿纺丝,可以得到导电性能良好(2.10 × 102 S m−1或4.77 × 10−3 Ω·m)、具有良好的机械拉伸性能和韧性(εmax~2400%, KIC = 61.44 MJ m−3)、自修复性能良好(η≥64.8%)的纳米复合纤维。这种耦合的机电特性赋予了合成纤维基于压阻或电化学机制的应变传感或生物标志物监测能力。提出的新型双功能智能光纤展示了多功能可穿戴健康监测设备的潜力。
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