Thermal Drawing of MoS2 Integrated PVDF Triboelectric Fiber for Continuous Respiration Monitoring

Md Sazid Bin Sadeque, Mahmudur Rahman, Md Mehdi Hasan, Mustafa Ordu
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Abstract

Triboelectric nanogenerators (TENGs) are environmentally sustainable energy harvesting devices that can convert mechanical and biomechanical energy into electrical output through the synergistic process of triboelectrification and electrostatic induction. Incorporating polyvinylidene fluoride (PVDF) and its copolymers into flexible TENG is particularly advantageous because of the abundance of highly electronegative fluorine ions and high dielectric constant. MoS2 can interact with PVDF dipoles to improve PVDF's β phase content, thereby improving the triboelectric property of the polymer nanocomposite fibers. In this study, thermally drawn PVDF TENG fibers are fabricated, incorporating various concentrations of MoS2 for the first time. The enhanced β phase property in the nanocomposite fiber improves the triboelectric output where 3 wt.% MoS2 – PVDF fiber demonstrates a maximum peak power output of 17.64 µW, exhibiting a threefold increment compared to 0 wt.% MoS2 – PVDF fiber. Simultaneous integration of multiple nanomaterials (MoS2 and graphene) is also investigated to analyze the triboelectric fiber's β phase formation and electrical performance. Harnessing the superior sensitivity of the MoS2 integrated triboelectric fiber, a self-powered wearable mask is designed for continuous human respiration monitoring.

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二硫化钼集成PVDF摩擦电纤维的热拉伸连续呼吸监测
摩擦电纳米发电机(TENGs)是一种环境可持续的能量收集装置,可以通过摩擦电气化和静电感应的协同过程将机械能和生物机械能转化为电能输出。将聚偏氟乙烯(PVDF)及其共聚物纳入柔性TENG尤其有利,因为具有丰富的高电负性氟离子和高介电常数。MoS2可以与PVDF偶极子相互作用,提高PVDF的β相含量,从而改善聚合物纳米复合纤维的摩擦电性能。在这项研究中,首次制备了热拉伸的PVDF TENG纤维,其中加入了不同浓度的二硫化钼。增强的β相性能改善了纳米复合纤维的摩擦电输出,其中3 wt.% MoS2 - PVDF纤维的最大峰值输出功率为17.64 μ W,与0 wt.% MoS2 - PVDF纤维相比,增加了三倍。还研究了多种纳米材料(MoS2和石墨烯)的同时集成,以分析摩擦电纤维的β相形成和电性能。利用MoS2集成摩擦电纤维的优越灵敏度,设计了一种自供电可穿戴式口罩,用于连续监测人体呼吸。
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