首页> 美国卫生研究院文献>Polymers >Self-Healing EPDM Rubbers with Highly Stable and Mechanically-Enhanced Urea-Formaldehyde (UF) Microcapsules Prepared by Multi-Step In Situ Polymerization
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Self-Healing EPDM Rubbers with Highly Stable and Mechanically-Enhanced Urea-Formaldehyde (UF) Microcapsules Prepared by Multi-Step In Situ Polymerization

机译:通过多步原位聚合制备具有高度稳定和机械增强尿素醛(UF)微胶囊的高稳定和机械增强尿素醛(UF)微胶囊的自愈

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摘要

The mechanically-enhanced urea-formaldehyde (UF) microcapsules are developed through a multi-step in situ polymerization method. Optical microscope (OM) and field emission scanning electron microscope (FE-SEM) prove that the microcapsules, 147.4 μm in diameter with a shell thickness of 600 nm, are well-formed. From 1H-nuclear magnetic resonance (1H-NMR) analysis, we found that dicyclopentadiene (DCPD), a self-healing agent encapsulated by the microcapsules, occupies ca. 40.3 %(v/v) of the internal volume of a single capsule. These microcapsules are mixed with EPDM (ethylene-propylene-diene-monomer) and Grubbs’ catalyst via a solution mixing method, and universal testing machine (UTM) tests show that the composites with mechanically-enhanced microcapsules has ca. 47% higher toughness than the composites with conventionally prepared UF microcapsules, which is attributed to the improved mechanical stability of the microcapsule. When the EPDM/microcapsule rubber composites are notched, Fourier-transform infrared (FT-IR) spectroscopy shows that DCPD leaks from the broken microcapsule to the damaged site and flows to fill the notched valley, and self-heals as it is cured by Grubbs’ catalyst. The self-healing efficiency depends on the capsule concentration in the EPDM matrix. However, the self-healed EPDM/microcapsule rubber composite with over 15 wt% microcapsule shows an almost full recovery of the mechanical strength and 100% healing efficiency.
机译:机械增强的尿素 - 甲醛(UF)微胶囊通过以原位聚合方法进行多步骤而开发。光学显微镜(OM)和场发射扫描电子显微镜(Fe-SEM)证明了微胶囊,直径为147.4μm,壳体厚度为600nm,形成良好。从1H核磁共振(1H-NMR)分析中,我们发现二环戊二烯(DCPD),由微胶囊包封的自愈剂,占据CA.单个胶囊的内部体积的40.3%(v / v)。将这些微胶囊通过溶液混合方法与EPDM(乙烯 - 二烯 - 单体)和GRUBBS催化剂混合,通用试验机(UTM)测试表明,具有机械增强的微胶囊的复合材料具有CA。韧性比具有常规制备的UF微胶囊的复合材料更高的韧性47%,这归因于微胶囊的改善的机械稳定性。当EPDM /微胶囊橡胶复合材料被缺口时,傅里叶变换红外(FT-IR)光谱显示,DCPD从破碎的微胶囊泄漏到损坏的部位并流动以填充缺口谷,并自我愈合,因为它由Grubbs治愈'催化剂。自我愈合效率取决于EPDM基质中的胶囊浓度。然而,具有超过15wt%的微胶囊的自愈的EPDM /微胶囊橡胶复合材料显示出几乎完全恢复机械强度和100%愈合效率。

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