He Jianwei, Guo Xuhua, Pan Caofeng, Cheng Gang, Zheng Mingli, Zi Yunlong, Cui Hongzhi, Li Xiaoyi
College of Materials Science and Engineering, Ocean University of China, Qingdao 266100, People's Republic of China.
Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 101400, People's Republic of China.
Nanotechnology. 2023 Jul 6;34(38). doi: 10.1088/1361-6528/acdfd5.
Infectious diseases are spreading rapidly with the flow of the world's population, and the prevention of epidemic diseases is particularly important for public and personal health. Therefore, there is an urgent need to develop a simple, efficient and non-toxic method to control the spread of bacteria and viruses. The newly developed triboelectric nanogenerator (TENG) can generate a high voltage, which inhibits bacterial reproduction. However, the output performance is the main factor limiting real-world applications of TENGs. Herein, we report a soft-contact fiber-structure TENG to avoid insufficient friction states and to improve the output, especially at a high rotation speed. Rabbit hair, carbon nanotubes, polyvinylidene difluoride film and paper all contain fiber structures that are used to guarantee soft contact between the friction layers and improve the contact state and abrasion problem. Compared with a direct-contact triboelectric nanogenerator, the outputs of this soft-contact fiber-structure TENG are improved by about 350%. Meanwhile, the open-circuit voltage can be enhanced to 3440 V, which solves the matching problems when driving high-voltage devices. A TENG-driven ultraviolet sterilization system is then developed. The bactericidal rate of this sterilization system can reach 91%, which significantly reduces the risk of disease spread. This work improves a forward-looking strategy to improve the output and service life of the TENG. It also expands the applications of self-powered TENG sterilization systems.
随着世界人口流动,传染病迅速传播,预防流行病对公众和个人健康尤为重要。因此,迫切需要开发一种简单、高效且无毒的方法来控制细菌和病毒的传播。新开发的摩擦纳米发电机(TENG)可以产生高电压,从而抑制细菌繁殖。然而,输出性能是限制TENG实际应用的主要因素。在此,我们报道了一种软接触纤维结构的TENG,以避免摩擦状态不足并提高输出,特别是在高转速下。兔毛、碳纳米管、聚偏二氟乙烯薄膜和纸张都含有纤维结构,用于保证摩擦层之间的软接触并改善接触状态和磨损问题。与直接接触式摩擦纳米发电机相比,这种软接触纤维结构TENG的输出提高了约350%。同时,开路电压可提高到3,440V,解决了驱动高压设备时的匹配问题。然后开发了一种由TENG驱动的紫外线杀菌系统。该杀菌系统的杀菌率可达91%,显著降低了疾病传播风险。这项工作改进了一种提高TENG输出和使用寿命的前瞻性策略。它还扩展了自供电TENG杀菌系统的应用。