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Design Strategy for Self-Healing Epoxy Coatings

机译:自我愈合环氧涂料的设计策略

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Self-healing strategies including intrinsic and extrinsic self-healing are commonly used for polymeric materials to restore their appearance and properties upon damage. Unlike intrinsic self-healing tactics where recovery is based on reversible chemical or physical bonds, extrinsic self-healing approaches rely on a secondary phase to acquire the self-healing functionality. Understanding the impacts of the secondary phase on both healing performance and matrix properties is important for rational system design. In this work, self-healing coating systems were prepared by blending a bio-based epoxy from diglycidyl ether of diphenolate esters (DGEDP) with thermoplastic polyurethane (TPU) prepolymers. Such systems exhibit polymerization induced phase separation morphology that controls coating mechanical and healing properties. Structure–property analysis indicates that the degree of phase separation is controlled by tuning the TPU prepolymer molecular weight. Increasing the TPU prepolymer molecular weight results in a highly phase separated morphology that is preferable for mechanical performances but undesirable for healing functionality. In this case, diffusion of TPU prepolymers during healing is restricted by the epoxy network rigidity and chain entanglement. Low molecular weight TPU prepolymers tend to phase mix with the epoxy matrix during curing, resulting in the formation of a flexible epoxy network that benefits TPU flow while decreasing Tg and mechanical properties. This work describes a rational strategy to develop self-healing coatings with controlled morphology to extend their functions and tailor their properties for specific applications.
机译:包括内在和外部自愈的自我愈合策略通常用于聚合物材料,以恢复其损坏时的外观和性能。与内在的自我愈合策略不同,其中恢复基于可逆化学或物理键,外在的自我愈合方法依赖于二级阶段以获得自我愈合功能。了解二级相对愈合性能和矩阵属性的影响对于Rational System Design非常重要。在这项工作中,通过用热塑性聚氨酯(TPU)预聚物从二酚酸酯(DgG)的二缩水甘油醚中混合生物基环氧树脂来制备自愈的涂料系统。这种系统表现出聚合诱导的相分离形态,其控制机械和愈合性能。结构性质分析表明通过调节TPU预聚物分子量来控制相分离程度。增加TPU预聚物分子量导致高相分离的形态,其优选用于机械性能,但对于愈合功能不希望。在这种情况下,TPU预聚物在愈合过程中的扩散受环氧网络刚性和链缠结的限制。低分子量TPU预聚物倾向于在固化过程中与环氧基质相相混合,导致形成柔性环氧网络,其在降低TG和机械性能的同时使TPU流动。这项工作描述了一种合理的策略,用于开发具有受控形态的自愈涂层,以扩展其功能并定制其特定应用的性质。

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