Department of Chemistry, Renmin University of China, Beijing, 100872, China.
Chemistry. 2019 Jan 2;25(1):183-188. doi: 10.1002/chem.201804526. Epub 2018 Dec 4.
Biofouling on surfaces of various materials has attracted considerable attention in biomedical and marine industries. Surface grafting based on covalent surface-initiated polymerization offers a popular route to address this problem by providing diverse robust polymer coatings capable of preventing the biofouling in complex environments. However, the existing methods for synthesizing polymer coatings are complicated and rigorous, or require special catalysts, greatly limiting their practical applications. In this work, a radical-cation-based surface-initiated polymerization protocol to graft the surface of darkened trans-polyisoprene (TPI) rubber with a thermo-responsive smart polymer, poly(N-isopropylacrylamide) (PNIPAM), through a simple iodine doping process is reported. A series of characterizations were performed to provide adequate evidence to confirm the successful grafting. Combining the thermal sensitivity of PNIPAM with the photothermal conversion ability of the darkened rubber, efficient bacteria-killing and antifouling capabilities were successfully achieved as a result of temperature-controlled iodine release and switchable amphiphilicity of PNIPAM.
生物污垢在各种材料的表面上已经引起了生物医学和海洋工业的极大关注。基于共价表面引发聚合的表面接枝提供了一种流行的方法来解决这个问题,通过提供各种强大的聚合物涂层,能够防止复杂环境中的生物污垢。然而,现有的合成聚合物涂层的方法复杂且严格,或者需要特殊的催化剂,极大地限制了它们的实际应用。在这项工作中,通过简单的碘掺杂过程,报道了一种基于自由基阳离子的表面引发聚合协议,将热敏智能聚合物聚(N-异丙基丙烯酰胺)(PNIPAM)接枝到黑化的反式聚异戊二烯(TPI)橡胶表面上。进行了一系列的表征,提供了充分的证据来确认成功的接枝。结合 PNIPAM 的热敏感性和黑化橡胶的光热转换能力,成功实现了高效的杀菌和抗污能力,这是由于温度控制的碘释放和 PNIPAM 的可切换两亲性。