A flexible self-cleaning/antibacterial PVDF/T-ZnO fabric based on piezo-photocatalytic coupling effect for smart mask

Qihao Li, Rui Lin, Zhaoxiang Tang, Shan Liang, X. Xue, Lili Xing
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Abstract

A novel flexible composite fabric has been engineered by combining piezoelectric poly (vinylidene fluoride) (PVDF) and tetrapod zinc oxide (T-ZnO) nanostructures, which are integrated onto a nonwoven fabric substrate. This fabric exhibits a wide array of functionalities, notably self-cleaning and antibacterial properties, facilitated by the synergistic piezo-photocatalytic coupling effect. Through the utilization of the piezoelectric effect inherent in PVDF/T-ZnO in tandem with the photocatalytic attributes of T-ZnO nanostructures, the fabric achieves concurrent degradation of organic pollutants and antibacterial efficacy when exposed to mechanical vibration and solar irradiation. The piezo-photocatalytic coupling effect engenders an internal electric field that aids in the effective separation of photo-generated carriers (electrons and holes), thereby diminishing recombination rates and augmenting the efficiency of the photocatalytic degradation process. Notably, organic pollutants such as methylene blue and azithromycin exhibit degradation levels of 96.0% and 92.6%, respectively, within a timeframe of 25 and 60 minutes. The incorporation of PVDF/T-ZnO results in an approximate 40% enhancement in the degradation rate of organic substances compared to the use of T-ZnO in isolation. Furthermore, the composite fabric showcases exceptional antibacterial efficacy, effectively inhibiting the proliferation of Staphylococcus aureus. Experimental findings reveal that the average antibacterial zone diameter of the PVDF/T-ZnO fabric measures at 7.68 mm, significantly surpassing that of the T-ZnO fabric and nonwoven fabric. Given its remarkable self-cleaning and antibacterial attributes, the PVDF/T-ZnO fabric exhibits substantial potential for diverse applications, including the development of intelligent masks tailored for deployment in healthcare settings and polluted environments.
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一种基于压电光催化耦合效应的柔性自清洁/抗菌 PVDF/T-ZnO 织物,用于智能光罩
通过将压电聚偏二氟乙烯(PVDF)和四极氧化锌(T-ZnO)纳米结构集成到无纺布基材上,设计出了一种新型柔性复合织物。这种织物具有多种功能,尤其是自清洁和抗菌特性,而协同的压电光催化耦合效应则为其提供了便利。通过利用 PVDF/T-ZnO 固有的压电效应和 T-ZnO 纳米结构的光催化特性,该织物在机械振动和太阳光照射下可同时实现有机污染物降解和抗菌功效。压电光催化耦合效应产生的内部电场有助于有效分离光产生的载流子(电子和空穴),从而降低重组率,提高光催化降解过程的效率。值得注意的是,亚甲基蓝和阿奇霉素等有机污染物在 25 分钟和 60 分钟内的降解率分别达到 96.0% 和 92.6%。与单独使用 T-ZnO 相比,PVDF/T-ZnO 的加入使有机物质的降解率提高了约 40%。此外,这种复合织物还具有卓越的抗菌功效,能有效抑制金黄色葡萄球菌的增殖。实验结果表明,PVDF/T-ZnO 织物的平均抗菌区直径为 7.68 毫米,大大超过了 T-ZnO 织物和无纺布。鉴于 PVDF/T-ZnO 织物具有出色的自清洁和抗菌特性,它在各种应用中展现出巨大的潜力,包括开发专为医疗机构和污染环境定制的智能口罩。
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