Long Yin, Yu Yanhao, Yin Xin, Li Jun, Du Xiaosong, Jiang Yadong, Wang Xudong
Department of Materials Science and Engineering, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.
State Key Laboratory of Electronic Thin Films and Integrated Devices, School of Optoelectronic Information, University of Electronic Science and Technology of China, Chengdu, 610054, China.
Nano Energy. 2019 Mar;57:558-565. doi: 10.1016/j.nanoen.2018.12.069. Epub 2018 Dec 21.
Biofouling has been a long-last problem in a variety of marine systems which causes energy waste and device damage. In this study, we present a self-activated anti-biofouling system enabled by electrical double layer disturbance, which could effectively suppress the initial formation of conditioning layers and subsequent microbe attachment. The small and low-frequency alternating electrical fields were produced by a triboelectric nanogenerator under water wave impacts. Systematic analyses confirmed that the anti-biofouling efficacy was directly related to the strength of the electric field and was effective in both fresh lake and sea water environments. An on-site demonstration was implemented at a calm lake shore for three weeks. The water wave-driven anti-biofouling exhibited excellent surface protection, which was significantly superior to several commercial anti-biofouling coatings. This development brings a novel, effective and eco-friendly solution for protecting a broad range of surfaces against biofouling.
生物污损一直是各种海洋系统中长期存在的问题,它会导致能源浪费和设备损坏。在本研究中,我们展示了一种由双电层干扰驱动的自激活抗生物污损系统,该系统可以有效抑制调节层的初始形成以及随后微生物的附着。在水波冲击下,摩擦纳米发电机产生小幅度的低频交变电场。系统分析证实,抗生物污损效果与电场强度直接相关,并且在淡水湖泊和海水环境中均有效。在平静的湖岸进行了为期三周的现场演示。水波驱动的抗生物污损表现出出色的表面保护性能,明显优于几种商用抗生物污损涂层。这一进展为保护广泛的表面免受生物污损带来了一种新颖、有效且环保的解决方案。