Chaudhuri Krishnaroop, Medhi Riddhiman, Zhang Zhenglin, Cai Zhuoyun, Ober Christopher K, Pham Jonathan T
Department of Chemical and Environmental Engineering, University of Cincinnati, Cincinnati, OH, 45221, USA.
Chemistry Department, University of Scranton, Scranton, PA, 18510, USA.
Macromol Rapid Commun. 2023 Oct;44(20):e2300304. doi: 10.1002/marc.202300304. Epub 2023 Aug 21.
Understanding how small molecules penetrate and contaminate polymer films is of vital importance for developing protective coatings for a wide range of applications. To this end, rhodamine B fluorescent dye is visualized diffusing through polystyrene-polydimethylsiloxane block copolymer (BCP) coatings using confocal microscopy. The intensity of dye inside the coatings grows and decays non-monotonically, which is likely due to a combination of dye molecule transport occurring concurrently in different directions. An empirical fitting equation allows for comparing the contamination rates between copolymers, demonstrating that dye penetration is related to the chemical makeup and configuration of the BCPs. This work shows that confocal microscopy can be a useful tool to visualize the transport of a fluorophore in space and time through a coating.
了解小分子如何渗透和污染聚合物薄膜对于开发适用于广泛应用的防护涂层至关重要。为此,使用共聚焦显微镜观察了罗丹明B荧光染料在聚苯乙烯-聚二甲基硅氧烷嵌段共聚物(BCP)涂层中的扩散情况。涂层内染料的强度呈非单调增长和衰减,这可能是由于染料分子在不同方向上同时发生传输的综合作用。一个经验拟合方程可以比较共聚物之间的污染速率,表明染料渗透与BCP的化学组成和结构有关。这项工作表明,共聚焦显微镜可以成为一种有用的工具,用于可视化荧光团在空间和时间上通过涂层的传输。