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Biobased, self-healable, high strength rubber with tunicate cellulose nanocrystals

机译:Biobased self-healable,高强度橡胶有被膜的纤维素纳米晶体

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摘要

Cellulose nanocrystals represent a promising and environmentally friendly reinforcing nanofiller for polymers, especially for rubbers and elastomers. Here, a simple approach via latex mixing is used to fabricate biobased, healable rubber with high strength based on epoxidized natural rubber (ENR). Tunicate cellulose nanocrystals (t-CNs) isolated from marine biomass with a high aspect ratio are used to improve both mechanical properties and self-healing behavior of the material. By introducing dynamic hydrogen bond supramolecular networks between oxygenous groups of ENR and hydroxyl groups on the t-CN surface, together with chain interdiffusion in permanently but slightly cross-linked rubber, self-healing and mechanical properties are facilitated significantly in the resulting materials. Macroscopic tensile healing behavior and microscopic morphology analyses are carried out to evaluate the performance of the materials. Both t-CN content and healing time have significant influence on healing behavior. The results indicate that a synergistic effect between molecular interdiffusion and dynamic hydrogen bond supramolecular networks leads to the improved self-healing behavior.
机译:纤维素纳米晶体是一种很有前途的环保加强nanofiller聚合物,特别是橡胶和弹性体。混合用于制造biobased,可治好的基于使环氧化橡胶和高强度天然橡胶(ENR)。纳米晶体(t-CNs)从海洋生物质分离具有高纵横比用于改善机械性能和自修复行为的材料。债券超分子网络之间氧气的全球和t-CN羟基组表面和链相互扩散永久但略交联橡胶、自愈和机械性能促进明显在生成的材料。和微观形态进行分析评估材料的性能。t-CN内容和恢复时间显著影响愈合的行为。结果表明,协同效应分子之间的相互扩散和动态导致氢键超分子网络改进后的自修复行为。

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