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首页> 外文期刊>ACS Omega >Bioinspired Polydopamine Coating as an Adhesion Enhancer Between Paraffin Microcapsules and an Epoxy Matrix
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Bioinspired Polydopamine Coating as an Adhesion Enhancer Between Paraffin Microcapsules and an Epoxy Matrix

机译:Bioinspired聚德米胺涂层作为石蜡微胶囊和环氧基质之间的粘附增强剂

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Microencapsulated phase change materials (PCMs) are attracting increasing attention as functional fillers in polymer matrices, to produce smart thermoregulating composites for applications in thermal energy storage (TES) and thermal management. In a polymer composite, the filler–matrix interfacial adhesion plays a fundamental role in the thermomechanical properties. Hence, this work aims to modify the surface of commercial PCM microcapsules through the formation of a layer of polydopamine (PDA), a bioinspired polymer that is emerging as a powerful tool to functionalize chemically inert surfaces due to its versatility and great adhesive potential in many different materials. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) evidenced that after PDA coating, the surface roughness increased from 9 to 86 nm, which is beneficial, as it allows a further increase in the interfacial interaction by mechanical interlocking. Spectroscopic techniques allowed investigating the surface chemistry and identifying reactive functional groups of the PDA layer and highlighted that, unlike the uncoated microcapsules, the PDA layer is able to react with oxirane groups, thereby forming a covalent bond with the epoxy matrix. Hot-stage optical microscopy and differential scanning calorimetry (DSC) highlighted that the PDA modification does not hinder the melting/crystallization process of the paraffinic core. Finally, SEM micrographs of the cryofracture surface of epoxy composites containing neat or PDA-modified microcapsules clearly evidenced improved adhesion between the capsule shell and the epoxy matrix. These results showed that PDA is a suitable coating material with considerable potential for increasing the interfacial adhesion between an epoxy matrix and polymer microcapsules with low surface reactivity. This is remarkably important not only for this specific application but also for other classes of composite materials. Future studies will investigate how the deposition parameters affect the morphology, roughness, and thickness of the PDA layer and how the layer properties influence the capsule–matrix adhesion.
机译:微胶囊化相变材料(PCMS)在聚合物基质中的功能填充剂中吸引了越来越长的关注,以产生用于在热能存储(TES)和热管理中的应用的智能热调节复合材料。在聚合物复合材料中,填料 - 基质界面粘附在热机械性质中起着基本作用。因此,该作品旨在通过形成一层多德莫胺(PDA),其作为强大的工具来改变商业PCM微胶囊的表面,其由于其许多功能性和粘合剂潜力而闻名化学惰性表面。不同的材料。扫描电子显微镜(SEM)和原子力显微镜(AFM)证明,在PDA涂层之后,表面粗糙度从9至86nm增加,这是有益的,因为它允许通过机械互锁进一步增加界面相互作用。允许研究表面化学和鉴定PDA层的反应官能团的光谱技术,并突出显示,与未涂覆的微胶囊不同,PDA层能够与氧化乙烷基团反应,从而形成与环氧基质的共价键。热级光学显微镜和差示扫描量热法(DSC)强调PDA改性不会阻碍石蜡芯的熔融/结晶过程。最后,含有整齐或PDA改性微胶囊的环氧复合材料的冷冻表面的SEM显微照片清楚地证明了胶囊壳和环氧基质之间的改善的粘合性。这些结果表明,PDA是合适的涂料材料,其具有相当大的电位,用于增加环氧基质与聚合物微胶囊之间具有低表面反应性的聚合物微胶囊之间的界面粘附。这不仅适用于该特定应用,而且对于其他类别的复合材料而言非常重要。未来的研究将研究沉积参数如何影响PDA层的形态,粗糙度和厚度以及层性质如何影响胶囊基质粘附。

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