Bairagi Satyaranjan, Khandelwal Gaurav, Karagiorgis Xenofon, Gokhool Shravan, Kumar Charchit, Min Guanbo, Mulvihill Daniel M
Materials and Manufacturing Research Group, James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, U.K.
Bendable Electronics and Sensing Technologies (BEST) Group, James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, U.K.
ACS Appl Mater Interfaces. 2022 Oct 5;14(39):44591-44603. doi: 10.1021/acsami.2c13092. Epub 2022 Sep 23.
A high-performance textile triboelectric nanogenerator is developed based on the common commercial fabrics silk and polyester (PET). Electrospun nylon 66 nanofibers were used to boost the tribo-positive performance of silk, and a poly(vinylidene difluoride) (PVDF) coating was deployed to increase the tribo-negativity of PET. The modifications confer a very significant boost in performance: output voltage and short-circuit current density increased ∼17 times (5.85 to 100 V) and ∼16 times (1.6 to 24.5 mA/m), respectively, compared with the Silk/PET baseline. The maximum power density was 280 mW/m at a 4 MΩ resistance. The performance boost likely results from enhancing the tribo-positivity (and tribo-negativity) of the contact layers and from increased contact area facilitated by the electrospun nanofibers. Excellent stability and durability were demonstrated: the nylon nanofibers and PVDF coating provide high output, while the silk and PET substrate fabrics confer strength and flexibility. Rapid capacitor charging rates of 0.045 V/s (2 μF), 0.031 V/s (10 μF), and 0.011 V/s (22 μF) were demonstrated. Advantages include high output, a fully textile structure with excellent flexibility, and construction based on cost-effective commercial fabrics. The device is ideal as a power source for wearable electronic devices, and the approach can easily be deployed for other textiles.
基于常见的商业织物丝绸和聚酯(PET)开发了一种高性能纺织摩擦电纳米发电机。采用静电纺丝尼龙66纳米纤维来提高丝绸的摩擦正性能,并部署聚偏二氟乙烯(PVDF)涂层来增加PET的摩擦负性能。这些改性措施使性能得到了显著提升:与丝绸/PET基线相比,输出电压和短路电流密度分别提高了约17倍(从5.85伏提高到100伏)和约16倍(从1.6毫安/平方米提高到24.5毫安/平方米)。在4兆欧电阻下,最大功率密度为280毫瓦/平方米。性能提升可能源于增强了接触层的摩擦正性能(和摩擦负性能)以及由静电纺丝纳米纤维促进的接触面积增加。该发电机展示出了出色的稳定性和耐久性:尼龙纳米纤维和PVDF涂层提供高输出,而丝绸和PET基底织物赋予强度和柔韧性。展示了0.045伏/秒(2微法)、0.031伏/秒(10微法)和0.011伏/秒(22微法)的快速电容器充电速率。其优点包括高输出、具有出色柔韧性的全纺织结构以及基于经济高效的商业织物构建。该装置是可穿戴电子设备理想的电源,并且这种方法可以很容易地应用于其他纺织品。