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弹性石墨烯-硅橡胶复合膜的防污性能及机理。

Antifouling performance and mechanism of elastic graphene-silicone rubber composite membranes.

机构信息

College of Physics, Jilin University, No. 2699 Qianjin Street, Changchun 130012, China.

出版信息

J Mater Chem B. 2019 Jan 21;7(3):488-497. doi: 10.1039/c8tb02648c. Epub 2019 Jan 2.

Abstract

Composite coatings have attracted great attention as an eco-friendly and economic solution to prevent ship hulls from biofouling. Inspired by the unstable surfaces of marine organisms with antifouling properties, this study describes the preparation of graphene-silicone rubber composite membranes. The membranes are characterized by a low surface energy and an adjustable elastic modulus, and these properties are conducive to preventing biofouling. Bacterial attachment was tested under both quasi-static and hydrodynamic conditions, and one rigid polystyrene sheet was used as the control group to verify the antifouling effects of unstable surfaces. The polystyrene sheet and the elastic membranes showed similar antifouling performance under quasi-static conditions. However, under hydrodynamic conditions, the elastic membranes showed better antifouling performance than the rigid polystyrene sheet. The results obtained using a laser-displacement sensor showed that micron-scale deformations were present on the elastic surface, and a mechanical model was employed to verify this conclusion. This study first confirmed the antifouling effects of the unstable surface, and proposed a model to reveal the antifouling mechanism of the unstable surface. According to the bacterial attachment test, a new generation membrane was made showing antifouling capacity with just 0.36 wt% graphene included during the fabrication of the membrane. This study provided a deeper insight into the antifouling mechanism of the elastic surface, and the membrane (0.36 wt%) may be promising for practical applications.

摘要

复合涂层作为一种环保且经济的解决方案,吸引了人们对防止船体生物污损的极大关注。本研究受具有防污性能的海洋生物不稳定表面的启发,描述了石墨烯-硅橡胶复合膜的制备。该膜具有低表面能和可调节弹性模量的特点,这些特性有利于防止生物污损。在准静态和动力学条件下测试了细菌附着情况,并使用刚性聚苯乙烯片作为对照组来验证不稳定表面的防污效果。聚苯乙烯片和弹性膜在准静态条件下表现出相似的防污性能。然而,在动力学条件下,弹性膜的防污性能优于刚性聚苯乙烯片。使用激光位移传感器获得的结果表明,弹性表面存在微米级的变形,并且采用机械模型验证了这一结论。本研究首次证实了不稳定表面的防污效果,并提出了一个模型来揭示不稳定表面的防污机制。根据细菌附着试验,在制造膜的过程中仅加入 0.36wt%的石墨烯,就制造出了具有防污能力的新一代膜。本研究深入了解了弹性表面的防污机制,这种膜(0.36wt%)在实际应用中可能很有前景。

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