Richardson Joseph J, Tardy Blaise L, Ejima Hirotaka, Guo Junling, Cui Jiwei, Liang Kang, Choi Gwan H, Yoo Pil J, De Geest Bruno G, Caruso Frank
ARC Centre of Excellence in Convergent Bio-Nano Science and Technology, and the Department of Chemical and Biomolecular Engineering, The University of Melbourne , Parkville, Victoria 3010, Australia.
School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University , Suwon, 16419, South Korea.
ACS Appl Mater Interfaces. 2016 Mar 23;8(11):7449-55. doi: 10.1021/acsami.6b00472. Epub 2016 Mar 8.
Temperature can be harnessed to engineer unique properties for materials useful in various contexts and has been shown to affect the layer-by-layer (LbL) assembly of polymer thin films and cause physical changes in preassembled polymer thin films. Herein we demonstrate that exposure to relatively low temperatures (≤ 100 °C) can induce physicochemical changes in cationic polymer thin films. The surface charge of polymer films containing primary and secondary amines reverses after heating (from positive to negative), and different characterization techniques are used to show that the change in surface charge is related to oxidation of the polymer that specifically occurs in the thin film state. This charge reversal allows for single-polymer LbL assembly to be performed with poly(allylamine) hydrochloride (PAH) through alternating heat/deposition steps. Furthermore, the negative charge induced by heating reduces the fouling and cell-association of PAH-coated planar and particulate substrates, respectively. This study highlights a unique property of thin films which is relevant to LbL assembly and biofouling and is of interest for the future development of thin polymer films for biomedical systems.
温度可用于设计具有独特性能的材料,这些材料在各种环境中都很有用,并且已被证明会影响聚合物薄膜的逐层(LbL)组装,并导致预组装聚合物薄膜发生物理变化。在此,我们证明暴露于相对较低的温度(≤100°C)会引起阳离子聚合物薄膜的物理化学变化。含有伯胺和仲胺的聚合物薄膜在加热后表面电荷会发生反转(从正变为负),并且使用不同的表征技术表明表面电荷的变化与聚合物的氧化有关,这种氧化特别发生在薄膜状态下。这种电荷反转使得通过交替加热/沉积步骤能够用聚(烯丙胺)盐酸盐(PAH)进行单聚合物LbL组装。此外,加热诱导的负电荷分别减少了PAH涂层平面和颗粒状底物的污垢和细胞结合。这项研究突出了薄膜的一种独特性能,该性能与LbL组装和生物污垢相关,并且对于用于生物医学系统的聚合物薄膜的未来发展具有重要意义。