He Jinmei, Xue Yuyu, Liu Hui, Li Jiehui, Liu Qinghua, Zhao Yue, Mu Leihuan, Sun Cai-Li, Qu Mengnan
College of Chemistry and Chemical Engineering, Xi'an University of Science and Technology, Xi'an 710054, China.
ACS Appl Mater Interfaces. 2023 Sep 20;15(37):43963-43975. doi: 10.1021/acsami.3c10328. Epub 2023 Sep 10.
With the rapid development of triboelectric nanogenerators (TENGs), the exploration of self-powered, flexible, and wearable electronic devices has attracted widespread attention. However, the choice of tribomaterials and high humidity environment have a significant impact on the triboelectricity of TENG. Therefore, we prepared a composite fabric (HPC) with superhydrophobic and conductive properties, which was used simultaneously as a tribopositive material and electrode for the construction of promising wearable TENGs. Specifically, the loading of polydopamine, carbon nanotubes, and polypyrrole on the surface of the cotton fabric makes it have not only conductivity but also enhanced tribopositive polarity. Then, cetyltrimethoxysilane was selected to modify it to obtain superhydrophobicity. Compared with the common TENGs with a separate tribolayer and electrode, the integrated HPC-TENG shows the advantages of simpler structure and lighter wear. Moreover, compared with the unmodified fabric-based TENG, the performance of the proposed HPC-TENG is improved by nearly 7.2 times, and the maximum power density can reach 2.6 W m. This remarkable output can be attributed to the combination of strong electron-giving groups, high electrical conductivity, and abundant micro- and nanorough structure of the HPC fabric. More importantly, due to the water repellency of the fabric surface, the high output performance can be maintained under high humidity conditions. In addition, HPC-TENG has potential applications as pressure sensors for human motion status monitoring and multichannel sensing for smart game blanket entertainment. The newly designed HPC-TENG offers a new strategy for the development of superhydrophobic fabrics with an electrical conductivity, energy harvesting, and self-powered sensor.
随着摩擦纳米发电机(TENGs)的迅速发展,对自供电、柔性和可穿戴电子设备的探索引起了广泛关注。然而,摩擦材料的选择和高湿度环境对TENG的摩擦电性能有重大影响。因此,我们制备了一种具有超疏水和导电性能的复合织物(HPC),它同时用作摩擦正材料和电极,用于构建有前景的可穿戴TENGs。具体而言,在棉织物表面负载聚多巴胺、碳纳米管和聚吡咯,使其不仅具有导电性,而且增强了摩擦正极性。然后,选择十六烷基三甲氧基硅烷对其进行改性以获得超疏水性。与具有单独摩擦层和电极的普通TENGs相比,集成的HPC-TENG具有结构更简单、穿戴更轻便的优点。此外,与未改性的织物基TENG相比,所提出的HPC-TENG的性能提高了近7.2倍,最大功率密度可达2.6 W/m²。这种显著的输出可归因于HPC织物中强供电子基团、高导电性以及丰富的微纳粗糙结构的结合。更重要的是,由于织物表面的拒水性,在高湿度条件下仍可保持高输出性能。此外,HPC-TENG作为用于人体运动状态监测的压力传感器以及智能游戏毯娱乐的多通道传感具有潜在应用。新设计的HPC-TENG为开发具有导电性、能量收集和自供电传感器功能的超疏水织物提供了一种新策略。