Kafkopoulos Georgios, Karakurt Ezgi, Martinho Ricardo P, Duvigneau Joost, Vancso G Julius
Department of Materials Science and Technology (MTP) of Polymers and Sustainable Polymer Chemistry (SPC), University of Twente, Enschede 7522 NB, The Netherlands.
Department of Molecules and Materials, MESA+ Institute for Nanotechnology, Faculty of Science and Technology, University of Twente, Enschede 7500 AE, The Netherlands.
ACS Appl Polym Mater. 2023 Jul 6;5(7):5370-5380. doi: 10.1021/acsapm.3c00672. eCollection 2023 Jul 14.
Control over adhesion at interfaces from strong bonding to release between thermoplastic polymers (TPs) and metal oxides is highly significant for polymer composites. In this work, we showcase a simple and inexpensive method to tune adhesion between a TP of growing interest, poly(lactic acid) (PLA), and two commercial metal alloys, based on titanium and stainless steel. This is realized by coating titanium and stainless steel wires with polydopamine (PDA), thermally treating them under vacuum at temperatures ranging from 25 to 250 °C, and then comolding them with PLA to form pullout specimens for adhesion tests. Pullout results indicate that PDA coatings treated at low temperatures up to a given threshold significantly improve adhesion between PLA and the metals. Conversely, at higher PDA annealing temperatures beyond the threshold, interfacial bonding gradually declines. The excellent control over interfacial adhesion is attributed to the thermally induced transformation of PDA. In this work, we show using thermogravimetric analysis, X-ray photoelectron spectroscopy, Fourier transform infrared, and C solid-state NMR that the extent of the thermal transformation is dependent on the annealing temperature. By selecting the annealing temperature, we vary the concentration of primary amine and hydroxyl groups in PDA, which influences adhesion at the metal/PLA interface. We believe that these findings contribute to optimizing and broadening the applications of PDA in composite materials.
控制热塑性聚合物(TPs)与金属氧化物之间从强键合到释放的界面粘附力,对于聚合物复合材料而言至关重要。在这项工作中,我们展示了一种简单且经济的方法,用于调节一种日益受关注的TP——聚乳酸(PLA)与两种基于钛和不锈钢的商用金属合金之间的粘附力。这是通过用聚多巴胺(PDA)涂覆钛丝和不锈钢丝,在25至250°C的温度下真空热处理它们,然后将它们与PLA共模塑以形成用于粘附力测试的拔出试样来实现的。拔出结果表明,在达到给定阈值之前的低温下处理的PDA涂层显著提高了PLA与金属之间的粘附力。相反,在高于阈值的较高PDA退火温度下,界面结合逐渐下降。对界面粘附力的出色控制归因于PDA的热诱导转变。在这项工作中,我们使用热重分析、X射线光电子能谱、傅里叶变换红外光谱和C固体核磁共振表明,热转变程度取决于退火温度。通过选择退火温度,我们改变了PDA中伯胺和羟基的浓度,这会影响金属/PLA界面处的粘附力。我们相信这些发现有助于优化和拓宽PDA在复合材料中的应用。