College of Chemistry, Chemical Engineering and Material Science, Soochow University , Suzhou 215123, China.
Marine Science and Conservation, Duke University Marine Laboratory , Beaufort, North Carolina 28516, United States.
ACS Appl Mater Interfaces. 2015 Nov 25;7(46):25586-91. doi: 10.1021/acsami.5b09199. Epub 2015 Nov 16.
We present a method for dual-mode-management of biofouling by modifying surface of silicone elastomers with zwitterionic polymeric grafts. Poly(sulfobetaine methacrylate) was grafted from poly(vinylmethylsiloxane) elastomer substrates using thiol-ene click chemistry and surface-initiated, controlled radical polymerization. These surfaces exhibited both fouling resistance and triggered fouling-release functionality. The zwitterionic polymers exhibited fouling resistance over short-term (∼hours) exposure to bacteria and barnacle cyprids. The biofilms that eventually accumulated over prolonged-exposure (∼days) were easily detached by applying mechanical strain to the elastomer substrate. Such dual-functional surfaces may be useful in developing environmentally and biologically friendly coatings for biofouling management on marine, industrial, and biomedical equipment because they can obviate the use of toxic compounds.
我们提出了一种通过在硅橡胶表面接枝两性离子聚合物来进行双模式生物污垢管理的方法。聚(磺酸甜菜碱甲基丙烯酸酯)通过巯基-烯点击化学和表面引发、可控自由基聚合从聚(乙烯基甲基硅氧烷)弹性体基底上接枝。这些表面表现出抗污染和触发式抗污染释放功能。在短时间(约数小时)暴露于细菌和藤壶幼体的情况下,两性离子聚合物表现出抗污染性。在长时间(约数天)暴露后最终积累的生物膜可以通过对弹性体基底施加机械应变很容易地脱落。这种双功能表面在开发用于海洋、工业和生物医学设备的生物污垢管理的环保和生物友好型涂层方面可能是有用的,因为它们可以避免使用有毒化合物。