首页> 外文期刊>Carbohydrate Polymers: Scientific and Technological Aspects of Industrially Important Polysaccharides >Mussel-inspired codepositing interconnected polypyrrole nanohybrids onto cellulose nanofiber networks for fabricating flexible conductive biobased composites
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Mussel-inspired codepositing interconnected polypyrrole nanohybrids onto cellulose nanofiber networks for fabricating flexible conductive biobased composites

机译:贻贝 - 激发络络络链型聚吡咯纳米胺基纤维素纳米恐怖网络,用于制造柔性导电生物复合材料

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摘要

The exploitation of an efficient strategy for preparing flexible green conductive composites with an interconnected filler network is of great scientific and technical interest. Herein, a high-performance interconnected cellulose nanofiber (CNF) template functionalized tannic acid (TA)/polypyrrole (PPy) nanohybrid network (TPy@CNF) is fabricated by a green mussel-inspired co-modification approach. The network offers high electrical conductivity to prepare flexible, plant-derived soy protein isolate (SPI) composites. The mussel-inspired interface design demonstrates versatile functions of a reactive adhesion layer to construct a multiple-bond-regulated interconnected TPy@CNF conducive polymer network architecture without the need for harsh conditions and toxic reagents. This well-defined conducing TA/PPy-encapsulated CNF network is of great benefit in achieving strong synergistic interactions by enhancing electrical conductivity, reducing junction contact resistance, and ensuring efficient load transfer during bending. When integrating 7.5 wt% TPy@CNF, the prepared SPI composites deliver significantly enhanced conductivity of 0.078 S m(-1) along with superior mechanical robustness (improved tensile strength and toughness) and excellent structural stability. This interconnected network design strategy can provide a green yet feasible approach for elaborate construction of CNF/conducting polymers in advanced energy-storage technologies.
机译:利用具有互连填充网络的柔性绿色导电复合材料的高效策略具有很大的科学和技术兴趣。这里,通过绿色贻贝鼓励的共同修改方法制造了一种高性能相互联系的纤维素纳米纤维(CNF)官能化鞣酸(TA)/聚吡咯(PPY)纳米银网络(TPY @ CNF)。该网络提供高电导率,以制备柔性植物衍生的大豆蛋白分离物(SPI)复合材料。贻贝启发的界面设计演示了反应性粘合层的多功能功能,以构建多键调节的互联TPY @ CNF有用的聚合物网络架构,而无需苛刻的病症和有毒试剂。这种明确的调节TA / PPY封装的CNF网络具有很大的益处,可通过提高导电性,降低结接触电阻和确保弯曲期间有效的负载传输来实现强大的协同相互作用。当整合7.5wt%TPY @ CNF时,制备的SPI复合材料具有显着提高的0.078 S M(-1)的电导率,以及卓越的机械稳健性(改善的拉伸强度和韧性)和优异的结构稳定性。这种互连的网络设计策略可以提供一种绿色然而可行的方法,用于在先进的能量存储技术中精确构建CNF /导电聚合物的结构。

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