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Dopamine-Mediated Pre-Crosslinked Cellulose/PolyurethaneBlock Elastomer for the Preparation of Robust Biocomposites

机译:多巴胺介导的预交联纤维素/聚氨酯嵌段弹性体用于制备坚固的生物复合材料

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摘要

The development of micro- and nanofibril cellulose to improve strength while reducing the side effects of toughness and water resistance can benefit integrated polymer performance. Inspired by the interior microstructure of mussel byssus, this paper proposed an efficient means of generating an active block microfibrillated cellulose/polyurethane elastomer using an epoxy monomer as a pre-crosslinked agent with the addition of a poly(dopamine) layer. The block elastomer served as a multifunctional crosslinker, constructing a covalent network and interfacial hydrogen bonding that interlinked the elastomer with a soy protein isolate (SPI) matrix. Compared with the pristine SPI film, the introduction of the block elastomer induced remarkable improvements in tensile strength and toughness (146.7 and 102.1%, respectively). Additionally, the block elastomer was employed to further estimate its reinforcing effect in SPI resin modification, which also exhibited favorable water resistance and adhesion performance. This strategy may provide a new approach for constructing superior elastomers toreinforce applicable biomass composites.
机译:开发微纤维和纳米原纤维纤维素以提高强度,同时减少韧性和耐水性的副作用,可以提高聚合物的综合性能。受到贻贝的内部微观结构的启发,本文提出了一种有效的方法,该方法使用环氧单体作为预交联剂并添加聚(多巴胺)层来生成活性嵌段微纤化纤维素/聚氨酯弹性体。嵌段弹性体充当多功能交联剂,构建共价网络和界面氢键,使弹性体与大豆分离蛋白(SPI)基质相互连接。与原始SPI膜相比,嵌段弹性体的引入显着提高了拉伸强度和韧性(分别为146.7%和102.1%)。另外,使用嵌段弹性体来进一步估计其在SPI树脂改性中的增强效果,该改性树脂还表现出有利的耐水性和粘合性能。该策略可能为构建高级弹性体提供新方法。加强适用的生物质复合材料。

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